VOTING POWER100.00%
DOWNVOTE POWER100.00%
RESOURCE CREDITS100.00%
REPUTATION PROGRESS58.80%
Net Worth
0.000USD
STEEM
0.000STEEM
SBD
0.000SBD
Effective Power
1.181SP
├── Own SP
0.000SP
└── Incoming DelegationsDeleg
+1.181SP
Detailed Balance
| STEEM | ||
| balance | 0.000STEEM | STEEM |
| market_balance | 0.000STEEM | STEEM |
| savings_balance | 0.000STEEM | STEEM |
| reward_steem_balance | 0.000STEEM | STEEM |
| STEEM POWER | ||
| Own SP | 0.000SP | SP |
| Delegated Out | 0.000SP | SP |
| Delegation In | 1.181SP | SP |
| Effective Power | 1.181SP | SP |
| Reward SP (pending) | 0.000SP | SP |
| SBD | ||
| sbd_balance | 0.000SBD | SBD |
| sbd_conversions | 0.000SBD | SBD |
| sbd_market_balance | 0.000SBD | SBD |
| savings_sbd_balance | 0.000SBD | SBD |
| reward_sbd_balance | 0.000SBD | SBD |
{
"balance": "0.000 STEEM",
"savings_balance": "0.000 STEEM",
"reward_steem_balance": "0.000 STEEM",
"vesting_shares": "0.000000 VESTS",
"delegated_vesting_shares": "0.000000 VESTS",
"received_vesting_shares": "1920.017158 VESTS",
"sbd_balance": "0.000 SBD",
"savings_sbd_balance": "0.000 SBD",
"reward_sbd_balance": "0.000 SBD",
"conversions": []
}Account Info
| name | tenten |
| id | 476505 |
| rank | 1,645,746 |
| reputation | 69680130768 |
| created | 2017-12-04T22:08:12 |
| recovery_account | steem |
| proxy | None |
| post_count | 40 |
| comment_count | 0 |
| lifetime_vote_count | 0 |
| witnesses_voted_for | 7 |
| last_post | 2018-10-28T08:28:57 |
| last_root_post | 2018-10-28T08:28:57 |
| last_vote_time | 2018-10-28T08:29:27 |
| proxied_vsf_votes | 0, 0, 0, 0 |
| can_vote | 1 |
| voting_power | 0 |
| delayed_votes | 0 |
| balance | 0.000 STEEM |
| savings_balance | 0.000 STEEM |
| sbd_balance | 0.000 SBD |
| savings_sbd_balance | 0.000 SBD |
| vesting_shares | 0.000000 VESTS |
| delegated_vesting_shares | 0.000000 VESTS |
| received_vesting_shares | 1920.017158 VESTS |
| reward_vesting_balance | 0.000000 VESTS |
| vesting_balance | 0.000 STEEM |
| vesting_withdraw_rate | 0.000000 VESTS |
| next_vesting_withdrawal | 1969-12-31T23:59:59 |
| withdrawn | 7034088583 |
| to_withdraw | 7034088583 |
| withdraw_routes | 0 |
| savings_withdraw_requests | 0 |
| last_account_recovery | 1970-01-01T00:00:00 |
| reset_account | null |
| last_owner_update | 2017-12-05T05:47:33 |
| last_account_update | 2018-02-28T07:01:39 |
| mined | No |
| sbd_seconds | 164,070 |
| sbd_last_interest_payment | 2020-12-02T02:06:33 |
| savings_sbd_last_interest_payment | 1970-01-01T00:00:00 |
{
"active": {
"account_auths": [],
"key_auths": [
[
"STM7kfwp141FUe8QPjPN2trX4RfQYg8RX4gTG2MxgEnxVLNGB9wSz",
1
]
],
"weight_threshold": 1
},
"balance": "0.000 STEEM",
"can_vote": true,
"comment_count": 0,
"created": "2017-12-04T22:08:12",
"curation_rewards": 39,
"delegated_vesting_shares": "0.000000 VESTS",
"downvote_manabar": {
"current_mana": 2238526435,
"last_update_time": 1606874793
},
"guest_bloggers": [],
"id": 476505,
"json_metadata": "{\"profile\":{\"cover_image\":\"https://img.esteem.ws/tg4qebkcje.jpg\",\"profile_image\":\"https://img.esteem.ws/bc1uqni8lr.jpg\",\"location\":\"Ibadan, Nigeria\",\"name\":\"1010\",\"about\":\"The beauty of binary\"}}",
"last_account_recovery": "1970-01-01T00:00:00",
"last_account_update": "2018-02-28T07:01:39",
"last_owner_update": "2017-12-05T05:47:33",
"last_post": "2018-10-28T08:28:57",
"last_root_post": "2018-10-28T08:28:57",
"last_vote_time": "2018-10-28T08:29:27",
"lifetime_vote_count": 0,
"market_history": [],
"memo_key": "STM7vtT2A4Z8vzYfSVt8h1Gix7H4U3Lw1SVeJqMfLuHktHr7fp5ct",
"mined": false,
"name": "tenten",
"next_vesting_withdrawal": "1969-12-31T23:59:59",
"other_history": [],
"owner": {
"account_auths": [],
"key_auths": [
[
"STM5nw39FYLrtYc2fpBoBYSHPxwZEww7nRaG7ukFUqZVucgjycJk2",
1
]
],
"weight_threshold": 1
},
"pending_claimed_accounts": 0,
"post_bandwidth": 0,
"post_count": 40,
"post_history": [],
"posting": {
"account_auths": [
[
"busy.app",
1
],
[
"decentmemes.app",
1
],
[
"esteemapp",
1
]
],
"key_auths": [
[
"STM6nw98opfenXr7xRi4LzMaoicSSxxH365JexEpyT86ddH8JnrEu",
1
]
],
"weight_threshold": 1
},
"posting_json_metadata": "{\"profile\":{\"cover_image\":\"https://img.esteem.ws/tg4qebkcje.jpg\",\"profile_image\":\"https://img.esteem.ws/bc1uqni8lr.jpg\",\"location\":\"Ibadan, Nigeria\",\"name\":\"1010\",\"about\":\"The beauty of binary\"}}",
"posting_rewards": 5812,
"proxied_vsf_votes": [
0,
0,
0,
0
],
"proxy": "",
"received_vesting_shares": "1920.017158 VESTS",
"recovery_account": "steem",
"reputation": "69680130768",
"reset_account": "null",
"reward_sbd_balance": "0.000 SBD",
"reward_steem_balance": "0.000 STEEM",
"reward_vesting_balance": "0.000000 VESTS",
"reward_vesting_steem": "0.000 STEEM",
"savings_balance": "0.000 STEEM",
"savings_sbd_balance": "0.000 SBD",
"savings_sbd_last_interest_payment": "1970-01-01T00:00:00",
"savings_sbd_seconds": "0",
"savings_sbd_seconds_last_update": "1970-01-01T00:00:00",
"savings_withdraw_requests": 0,
"sbd_balance": "0.000 SBD",
"sbd_last_interest_payment": "2020-12-02T02:06:33",
"sbd_seconds": "164070",
"sbd_seconds_last_update": "2020-12-02T02:08:03",
"tags_usage": [],
"to_withdraw": "7034088583",
"transfer_history": [],
"vesting_balance": "0.000 STEEM",
"vesting_shares": "0.000000 VESTS",
"vesting_withdraw_rate": "0.000000 VESTS",
"vote_history": [],
"voting_manabar": {
"current_mana": "8954105741",
"last_update_time": 1606874793
},
"voting_power": 0,
"withdraw_routes": 0,
"withdrawn": "7034088583",
"witness_votes": [
"aggroed",
"busy.witness",
"good-karma",
"jerrybanfield",
"ocd-witness",
"utopian-io",
"yabapmatt"
],
"witnesses_voted_for": 7,
"rank": 1645746
}Withdraw Routes
| Incoming | Outgoing |
|---|---|
Empty | Empty |
{
"incoming": [],
"outgoing": []
}From Date
To Date
tentensent 0.921 STEEM to @tellafriend2021/01/02 02:32:36
tentensent 0.921 STEEM to @tellafriend
2021/01/02 02:32:36
| amount | 0.921 STEEM |
| from | tenten |
| memo | |
| to | tellafriend |
| Transaction Info | Block #49969975/Trx da6347563594d03e6323725f7095a41ae3cece1e |
View Raw JSON Data
{
"block": 49969975,
"op": [
"transfer",
{
"amount": "0.921 STEEM",
"from": "tenten",
"memo": "",
"to": "tellafriend"
}
],
"op_in_trx": 0,
"timestamp": "2021-01-02T02:32:36",
"trx_id": "da6347563594d03e6323725f7095a41ae3cece1e",
"trx_in_block": 0,
"virtual_op": 0
}tentenreceived 0.921 STEEM from power down installment (1.081 SP)2020/12/30 02:10:00
tentenreceived 0.921 STEEM from power down installment (1.081 SP)
2020/12/30 02:10:00
| deposited | 0.921 STEEM |
| from account | tenten |
| to account | tenten |
| withdrawn | 1758.522145 VESTS |
| Transaction Info | Block #49884138/Virtual Operation #2 |
View Raw JSON Data
{
"block": 49884138,
"op": [
"fill_vesting_withdraw",
{
"deposited": "0.921 STEEM",
"from_account": "tenten",
"to_account": "tenten",
"withdrawn": "1758.522145 VESTS"
}
],
"op_in_trx": 0,
"timestamp": "2020-12-30T02:10:00",
"trx_id": "0000000000000000000000000000000000000000",
"trx_in_block": 4294967295,
"virtual_op": 2
}tentensent 0.921 STEEM to @tellafriend2020/12/25 04:04:21
tentensent 0.921 STEEM to @tellafriend
2020/12/25 04:04:21
| amount | 0.921 STEEM |
| from | tenten |
| memo | |
| to | tellafriend |
| Transaction Info | Block #49744062/Trx e8c361de41f3c5164368b3bb72f26af16ec90036 |
View Raw JSON Data
{
"block": 49744062,
"op": [
"transfer",
{
"amount": "0.921 STEEM",
"from": "tenten",
"memo": "",
"to": "tellafriend"
}
],
"op_in_trx": 0,
"timestamp": "2020-12-25T04:04:21",
"trx_id": "e8c361de41f3c5164368b3bb72f26af16ec90036",
"trx_in_block": 10,
"virtual_op": 0
}tentenreceived 0.921 STEEM from power down installment (1.081 SP)2020/12/23 02:10:00
tentenreceived 0.921 STEEM from power down installment (1.081 SP)
2020/12/23 02:10:00
| deposited | 0.921 STEEM |
| from account | tenten |
| to account | tenten |
| withdrawn | 1758.522146 VESTS |
| Transaction Info | Block #49684862/Virtual Operation #8 |
View Raw JSON Data
{
"block": 49684862,
"op": [
"fill_vesting_withdraw",
{
"deposited": "0.921 STEEM",
"from_account": "tenten",
"to_account": "tenten",
"withdrawn": "1758.522146 VESTS"
}
],
"op_in_trx": 0,
"timestamp": "2020-12-23T02:10:00",
"trx_id": "0000000000000000000000000000000000000000",
"trx_in_block": 4294967295,
"virtual_op": 8
}tentensent 0.922 STEEM to @tellafriend2020/12/18 13:54:48
tentensent 0.922 STEEM to @tellafriend
2020/12/18 13:54:48
| amount | 0.922 STEEM |
| from | tenten |
| memo | |
| to | tellafriend |
| Transaction Info | Block #49556590/Trx e352f739a780c0fec7cc763c21accd339932386d |
View Raw JSON Data
{
"block": 49556590,
"op": [
"transfer",
{
"amount": "0.922 STEEM",
"from": "tenten",
"memo": "",
"to": "tellafriend"
}
],
"op_in_trx": 0,
"timestamp": "2020-12-18T13:54:48",
"trx_id": "e352f739a780c0fec7cc763c21accd339932386d",
"trx_in_block": 5,
"virtual_op": 0
}tentenreceived 0.920 STEEM from power down installment (1.081 SP)2020/12/16 02:10:00
tentenreceived 0.920 STEEM from power down installment (1.081 SP)
2020/12/16 02:10:00
| deposited | 0.920 STEEM |
| from account | tenten |
| to account | tenten |
| withdrawn | 1758.522146 VESTS |
| Transaction Info | Block #49486027/Virtual Operation #4 |
View Raw JSON Data
{
"block": 49486027,
"op": [
"fill_vesting_withdraw",
{
"deposited": "0.920 STEEM",
"from_account": "tenten",
"to_account": "tenten",
"withdrawn": "1758.522146 VESTS"
}
],
"op_in_trx": 0,
"timestamp": "2020-12-16T02:10:00",
"trx_id": "0000000000000000000000000000000000000000",
"trx_in_block": 4294967295,
"virtual_op": 4
}booster007sent 0.001 STEEM to @tenten- "Send 0.500 SBD/steem For resteem over 5000+ followers / send 1 SBD/steem resteem over 11,800+ Active Follwers and 100% upvote send your link in memo ! @Boostupvote Attached ||||||||||| DELEGATE STEEM ..."2020/12/11 17:01:48
booster007sent 0.001 STEEM to @tenten- "Send 0.500 SBD/steem For resteem over 5000+ followers / send 1 SBD/steem resteem over 11,800+ Active Follwers and 100% upvote send your link in memo ! @Boostupvote Attached ||||||||||| DELEGATE STEEM ..."
2020/12/11 17:01:48
| amount | 0.001 STEEM |
| from | booster007 |
| memo | Send 0.500 SBD/steem For resteem over 5000+ followers / send 1 SBD/steem resteem over 11,800+ Active Follwers and 100% upvote send your link in memo ! @Boostupvote Attached ||||||||||| DELEGATE STEEM POWER TO @booster007 AND EARN 33% APR OF YOUR DELEGATION |
| to | tenten |
| Transaction Info | Block #49362139/Trx ad808c2c853b4c7ac703825c0fdfd7957a413463 |
View Raw JSON Data
{
"block": 49362139,
"op": [
"transfer",
{
"amount": "0.001 STEEM",
"from": "booster007",
"memo": "Send 0.500 SBD/steem For resteem over 5000+ followers / send 1 SBD/steem resteem over 11,800+ Active Follwers and 100% upvote send your link in memo ! @Boostupvote Attached ||||||||||| DELEGATE STEEM POWER TO @booster007 AND EARN 33% APR OF YOUR DELEGATION",
"to": "tenten"
}
],
"op_in_trx": 0,
"timestamp": "2020-12-11T17:01:48",
"trx_id": "ad808c2c853b4c7ac703825c0fdfd7957a413463",
"trx_in_block": 25,
"virtual_op": 0
}flashlotterysent 0.001 STEEM to @tenten- "Interested by playing a lottery game? Send at least 1 STEEM to @flashlottery!"2020/12/10 22:16:00
flashlotterysent 0.001 STEEM to @tenten- "Interested by playing a lottery game? Send at least 1 STEEM to @flashlottery!"
2020/12/10 22:16:00
| amount | 0.001 STEEM |
| from | flashlottery |
| memo | Interested by playing a lottery game? Send at least 1 STEEM to @flashlottery! |
| to | tenten |
| Transaction Info | Block #49340030/Trx ffbbea322579af62c925aa027d8d634b9052c8bc |
View Raw JSON Data
{
"block": 49340030,
"op": [
"transfer",
{
"amount": "0.001 STEEM",
"from": "flashlottery",
"memo": "Interested by playing a lottery game? Send at least 1 STEEM to @flashlottery!",
"to": "tenten"
}
],
"op_in_trx": 0,
"timestamp": "2020-12-10T22:16:00",
"trx_id": "ffbbea322579af62c925aa027d8d634b9052c8bc",
"trx_in_block": 2,
"virtual_op": 0
}tentensent 0.919 STEEM to @tellafriend- "Hey there"2020/12/10 22:15:57
tentensent 0.919 STEEM to @tellafriend- "Hey there"
2020/12/10 22:15:57
| amount | 0.919 STEEM |
| from | tenten |
| memo | Hey there |
| to | tellafriend |
| Transaction Info | Block #49340029/Trx 33d10cd026ffb783693a8d7d49f0a8d3d2cb203f |
View Raw JSON Data
{
"block": 49340029,
"op": [
"transfer",
{
"amount": "0.919 STEEM",
"from": "tenten",
"memo": "Hey there",
"to": "tellafriend"
}
],
"op_in_trx": 0,
"timestamp": "2020-12-10T22:15:57",
"trx_id": "33d10cd026ffb783693a8d7d49f0a8d3d2cb203f",
"trx_in_block": 0,
"virtual_op": 0
}tentenreceived 0.919 STEEM from power down installment (1.081 SP)2020/12/09 02:10:00
tentenreceived 0.919 STEEM from power down installment (1.081 SP)
2020/12/09 02:10:00
| deposited | 0.919 STEEM |
| from account | tenten |
| to account | tenten |
| withdrawn | 1758.522146 VESTS |
| Transaction Info | Block #49288104/Virtual Operation #2 |
View Raw JSON Data
{
"block": 49288104,
"op": [
"fill_vesting_withdraw",
{
"deposited": "0.919 STEEM",
"from_account": "tenten",
"to_account": "tenten",
"withdrawn": "1758.522146 VESTS"
}
],
"op_in_trx": 0,
"timestamp": "2020-12-09T02:10:00",
"trx_id": "0000000000000000000000000000000000000000",
"trx_in_block": 4294967295,
"virtual_op": 2
}tentensent 17.910 STEEM to @paragon992020/12/02 02:10:21
tentensent 17.910 STEEM to @paragon99
2020/12/02 02:10:21
| amount | 17.910 STEEM |
| from | tenten |
| memo | |
| to | paragon99 |
| Transaction Info | Block #49090634/Trx 79f0566d63150eaadddc40ed83b3bfd3628d1ec7 |
View Raw JSON Data
{
"block": 49090634,
"op": [
"transfer",
{
"amount": "17.910 STEEM",
"from": "tenten",
"memo": "",
"to": "paragon99"
}
],
"op_in_trx": 0,
"timestamp": "2020-12-02T02:10:21",
"trx_id": "79f0566d63150eaadddc40ed83b3bfd3628d1ec7",
"trx_in_block": 5,
"virtual_op": 0
}tentenstarted power down of 4.325 SP2020/12/02 02:10:00
tentenstarted power down of 4.325 SP
2020/12/02 02:10:00
| account | tenten |
| vesting shares | 7034.088583 VESTS |
| Transaction Info | Block #49090627/Trx 6314dff6d441c59875b83bd768f778f294dd20cf |
View Raw JSON Data
{
"block": 49090627,
"op": [
"withdraw_vesting",
{
"account": "tenten",
"vesting_shares": "7034.088583 VESTS"
}
],
"op_in_trx": 0,
"timestamp": "2020-12-02T02:10:00",
"trx_id": "6314dff6d441c59875b83bd768f778f294dd20cf",
"trx_in_block": 2,
"virtual_op": 0
}tentenblockchain operation: limit order create2020/12/02 02:08:03
tentenblockchain operation: limit order create
2020/12/02 02:08:03
| amount to sell | 1.823 SBD |
| expiration | 2020-12-29T02:06:41 |
| fill or kill | false |
| min to receive | 17.166 STEEM |
| orderid | 1606874860 |
| owner | tenten |
| Transaction Info | Block #49090588/Trx 358eb10a4a2036d2d7cd292a178e3020d341dfac |
View Raw JSON Data
{
"block": 49090588,
"op": [
"limit_order_create",
{
"amount_to_sell": "1.823 SBD",
"expiration": "2020-12-29T02:06:41",
"fill_or_kill": false,
"min_to_receive": "17.166 STEEM",
"orderid": 1606874860,
"owner": "tenten"
}
],
"op_in_trx": 0,
"timestamp": "2020-12-02T02:08:03",
"trx_id": "358eb10a4a2036d2d7cd292a178e3020d341dfac",
"trx_in_block": 0,
"virtual_op": 0
}tentenbought 17.169 STEEM for 1.823 SBD from @quicktrades2020/12/02 02:08:03
tentenbought 17.169 STEEM for 1.823 SBD from @quicktrades
2020/12/02 02:08:03
| current orderid | 1606874860 |
| current owner | tenten |
| current pays | 1.823 SBD |
| open orderid | 1977662833 |
| open owner | quicktrades |
| open pays | 17.169 STEEM |
| Transaction Info | Block #49090588/Trx 358eb10a4a2036d2d7cd292a178e3020d341dfac |
View Raw JSON Data
{
"block": 49090588,
"op": [
"fill_order",
{
"current_orderid": 1606874860,
"current_owner": "tenten",
"current_pays": "1.823 SBD",
"open_orderid": 1977662833,
"open_owner": "quicktrades",
"open_pays": "17.169 STEEM"
}
],
"op_in_trx": 0,
"timestamp": "2020-12-02T02:08:03",
"trx_id": "358eb10a4a2036d2d7cd292a178e3020d341dfac",
"trx_in_block": 0,
"virtual_op": 1
}tentenclaimed reward balance: 0.009 SBD, 0.016 SP2020/12/02 02:06:33
tentenclaimed reward balance: 0.009 SBD, 0.016 SP
2020/12/02 02:06:33
| account | tenten |
| reward sbd | 0.009 SBD |
| reward steem | 0.000 STEEM |
| reward vests | 26.214012 VESTS |
| Transaction Info | Block #49090558/Trx af6a90a39b3a4ba6fe175171c139538171eefcef |
View Raw JSON Data
{
"block": 49090558,
"op": [
"claim_reward_balance",
{
"account": "tenten",
"reward_sbd": "0.009 SBD",
"reward_steem": "0.000 STEEM",
"reward_vests": "26.214012 VESTS"
}
],
"op_in_trx": 0,
"timestamp": "2020-12-02T02:06:33",
"trx_id": "af6a90a39b3a4ba6fe175171c139538171eefcef",
"trx_in_block": 1,
"virtual_op": 0
}2020/11/03 04:30:45
2020/11/03 04:30:45
| delegatee | tenten |
| delegator | steem |
| vesting shares | 1920.017158 VESTS |
| Transaction Info | Block #48272956/Trx 305d4c5e83fb1849da3e2d483239a356e61f2d70 |
View Raw JSON Data
{
"block": 48272956,
"op": [
"delegate_vesting_shares",
{
"delegatee": "tenten",
"delegator": "steem",
"vesting_shares": "1920.017158 VESTS"
}
],
"op_in_trx": 0,
"timestamp": "2020-11-03T04:30:45",
"trx_id": "305d4c5e83fb1849da3e2d483239a356e61f2d70",
"trx_in_block": 3,
"virtual_op": 0
}2020/05/09 11:58:21
2020/05/09 11:58:21
| delegatee | tenten |
| delegator | steem |
| vesting shares | 2758.171678 VESTS |
| Transaction Info | Block #43224335/Trx 5556e3f963ca0f2d892a925ddfe4d9267e518272 |
View Raw JSON Data
{
"block": 43224335,
"op": [
"delegate_vesting_shares",
{
"delegatee": "tenten",
"delegator": "steem",
"vesting_shares": "2758.171678 VESTS"
}
],
"op_in_trx": 0,
"timestamp": "2020-05-09T11:58:21",
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}2020/05/08 16:30:27
2020/05/08 16:30:27
| delegatee | tenten |
| delegator | steem |
| vesting shares | 1953.311140 VESTS |
| Transaction Info | Block #43201532/Trx b2253571a4f12478cfc199d77028ebbc9ad0126a |
View Raw JSON Data
{
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}2019/12/28 16:02:45
2019/12/28 16:02:45
| delegatee | tenten |
| delegator | steem |
| vesting shares | 2830.746156 VESTS |
| Transaction Info | Block #39436554/Trx 63f08d129422764655b997fc2a3e33638272fb8b |
View Raw JSON Data
{
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}2019/12/04 23:32:06
2019/12/04 23:32:06
| author | steemitboard |
| body | Congratulations @tenten! You received a personal award! <table><tr><td>https://steemitimages.com/70x70/http://steemitboard.com/@tenten/birthday2.png</td><td>Happy Birthday! - You are on the Steem blockchain for 2 years!</td></tr></table> <sub>_You can view [your badges on your Steem Board](https://steemitboard.com/@tenten) and compare to others on the [Steem Ranking](https://steemitboard.com/ranking/index.php?name=tenten)_</sub> ###### [Vote for @Steemitboard as a witness](https://v2.steemconnect.com/sign/account-witness-vote?witness=steemitboard&approve=1) to get one more award and increased upvotes! |
| json metadata | {"image":["https://steemitboard.com/img/notify.png"]} |
| parent author | tenten |
| parent permlink | menus-i-know |
| permlink | steemitboard-notify-tenten-20191204t233205000z |
| title | |
| Transaction Info | Block #38755585/Trx cf9b63b03946ef4a0fb3fac655a79af1d0aeeacc |
View Raw JSON Data
{
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2019/01/27 09:19:06
| delegatee | tenten |
| delegator | steem |
| vesting shares | 3027.534881 VESTS |
| Transaction Info | Block #29818397/Trx 359be50b8724eb0ced36e18713d875895f2f321d |
View Raw JSON Data
{
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}2018/12/18 18:19:42
2018/12/18 18:19:42
| amount | 0.001 STEEM |
| from | merlin7 |
| memo | ***Have you heard of magic dice in steem platform,which doubles your STEEM and SBD,check this link and register to double your STEEM/SBD https://bit.ly/magicdice2 |
| to | tenten |
| Transaction Info | Block #28678196/Trx 6bf7c0e9f3b2f3010a2884a040f71796a40029c4 |
View Raw JSON Data
{
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}2018/12/18 17:17:09
2018/12/18 17:17:09
| amount | 0.001 STEEM |
| from | merlin7 |
| memo | ***Have you heard of magic dice in steem platform,which doubles your STEEM and SBD,check this link and register to double your STEEM/SBD https://bit.ly/magicdice2 |
| to | tenten |
| Transaction Info | Block #28676947/Trx e6c1373524af1181745e9f3835e35c15d97cae5b |
View Raw JSON Data
{
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"to": "tenten"
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}2018/12/04 23:48:15
2018/12/04 23:48:15
| author | steemitboard |
| body | Congratulations @tenten! You received a personal award! <table><tr><td>https://steemitimages.com/70x70/http://steemitboard.com/@tenten/birthday1.png</td><td>1 Year on Steemit</td></tr></table> <sub>_[Click here to view your Board of Honor](https://steemitboard.com/@tenten)_</sub> **Do not miss the last post from @steemitboard:** <table><tr><td><a href="https://steemit.com/steemitboard/@steemitboard/5jrq2c-steemitboard-saint-nicholas-day"><img src="https://steemitimages.com/64x128/http://i.cubeupload.com/mGo2Zd.png"></a></td><td><a href="https://steemit.com/steemitboard/@steemitboard/5jrq2c-steemitboard-saint-nicholas-day">Saint Nicholas challenge for good boys and girls</a></td></tr></table> > Support [SteemitBoard's project](https://steemit.com/@steemitboard)! **[Vote for its witness](https://v2.steemconnect.com/sign/account-witness-vote?witness=steemitboard&approve=1)** and **get one more award**! |
| json metadata | {"image":["https://steemitboard.com/img/notify.png"]} |
| parent author | tenten |
| parent permlink | menus-i-know |
| permlink | steemitboard-notify-tenten-20181204t234814000z |
| title | |
| Transaction Info | Block #28281823/Trx 45937cf4421ff2747da7ceef325f10f06f2b5ae2 |
View Raw JSON Data
{
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}2018/11/26 19:43:27
2018/11/26 19:43:27
| delegatee | tenten |
| delegator | steem |
| vesting shares | 23201.887557 VESTS |
| Transaction Info | Block #28046610/Trx 1468a1dc8b896d935a1fa619757dba76d5b9987f |
View Raw JSON Data
{
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}tentenreceived 0.009 SBD, 0.016 SP author reward for @tenten / menus-i-know2018/11/04 08:28:57
tentenreceived 0.009 SBD, 0.016 SP author reward for @tenten / menus-i-know
2018/11/04 08:28:57
| author | tenten |
| permlink | menus-i-know |
| sbd payout | 0.009 SBD |
| steem payout | 0.000 STEEM |
| vesting payout | 26.214012 VESTS |
| Transaction Info | Block #27399944/Virtual Operation #5 |
View Raw JSON Data
{
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"op": [
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{
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}delicious-kimchiupvoted (30.00%) @tenten / menus-i-know2018/10/28 08:38:54
delicious-kimchiupvoted (30.00%) @tenten / menus-i-know
2018/10/28 08:38:54
| author | tenten |
| permlink | menus-i-know |
| voter | delicious-kimchi |
| weight | 3000 (30.00%) |
| Transaction Info | Block #27198683/Trx 453a600737e17eb3bfd527a3ad58909098efa8e9 |
View Raw JSON Data
{
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}tentenclaimed reward balance: 0.737 STEEM, 0.748 SBD, 1.558 SP2018/10/28 08:30:12
tentenclaimed reward balance: 0.737 STEEM, 0.748 SBD, 1.558 SP
2018/10/28 08:30:12
| account | tenten |
| reward sbd | 0.748 SBD |
| reward steem | 0.737 STEEM |
| reward vests | 2533.966308 VESTS |
| Transaction Info | Block #27198509/Trx d80504120e645b54b8ef1811d3cfbbffdac9cfa1 |
View Raw JSON Data
{
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}tentenupvoted (100.00%) @carllogan / 5nunb5-mein-digitales-cosplay-archiv-2017-viecc-vienna-comic-con2018/10/28 08:29:27
tentenupvoted (100.00%) @carllogan / 5nunb5-mein-digitales-cosplay-archiv-2017-viecc-vienna-comic-con
2018/10/28 08:29:27
| author | carllogan |
| permlink | 5nunb5-mein-digitales-cosplay-archiv-2017-viecc-vienna-comic-con |
| voter | tenten |
| weight | 10000 (100.00%) |
| Transaction Info | Block #27198494/Trx 251bce9127794b560f2462b9897d4b65444aff4a |
View Raw JSON Data
{
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{
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"op_in_trx": 0,
"timestamp": "2018-10-28T08:29:27",
"trx_id": "251bce9127794b560f2462b9897d4b65444aff4a",
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}tentenpublished a new post: menus-i-know2018/10/28 08:28:57
tentenpublished a new post: menus-i-know
2018/10/28 08:28:57
| author | tenten |
| body | Do you know the secret menus of your favorite kitchen establishments. Drop em here let's share. KFC: Ultimate Zinger McDonald's : Mc gangbang Chipotle: Burrito Drop yours don't spoil the fun. Don't do so without up voting Peace |
| json metadata | {"tags":["food","kitchen","menu","life","calories"],"app":"steemit/0.1","format":"markdown"} |
| parent author | |
| parent permlink | food |
| permlink | menus-i-know |
| title | Menus I Know |
| Transaction Info | Block #27198484/Trx bea907c8157960892cef144b1d66e39bbb509f44 |
View Raw JSON Data
{
"block": 27198484,
"op": [
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{
"author": "tenten",
"body": "Do you know the secret menus of your favorite kitchen establishments.\nDrop em here let's share.\n\nKFC: Ultimate Zinger\nMcDonald's : Mc gangbang\nChipotle: Burrito\n\nDrop yours don't spoil the fun.\nDon't do so without up voting\nPeace",
"json_metadata": "{\"tags\":[\"food\",\"kitchen\",\"menu\",\"life\",\"calories\"],\"app\":\"steemit/0.1\",\"format\":\"markdown\"}",
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}tentenpublished a new post: arrival-of-some-species-b9a6dcd4ecf1f2018/10/28 08:25:12
tentenpublished a new post: arrival-of-some-species-b9a6dcd4ecf1f
2018/10/28 08:25:12
| author | tenten |
| body | XXX |
| json metadata | {"tags":["africa","science","evolution","date","paragon"],"app":"steemit/0.1","format":"markdown","community":"esteem"} |
| parent author | |
| parent permlink | africa |
| permlink | arrival-of-some-species-b9a6dcd4ecf1f |
| title | Arrival of some species |
| Transaction Info | Block #27198409/Trx c0022bda66588a7cac62d40de56d96f0ea9fa06e |
View Raw JSON Data
{
"block": 27198409,
"op": [
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}2018/10/20 03:09:27
2018/10/20 03:09:27
| delegatee | tenten |
| delegator | steem |
| vesting shares | 5616.531258 VESTS |
| Transaction Info | Block #26961867/Trx 0efeef72600937a3f1e805caf74aa1c6ddc50bdd |
View Raw JSON Data
{
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}2018/10/08 19:20:36
2018/10/08 19:20:36
| delegatee | tenten |
| delegator | steem |
| vesting shares | 25816.136509 VESTS |
| Transaction Info | Block #26635935/Trx 2c705b3863d0092d1deb66451f24a6197dc6c70b |
View Raw JSON Data
{
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}tentenreceived 0.737 STEEM, 0.748 SBD, 1.558 SP author reward for @tenten / deep-learning-creating-machines-of-the-future2018/07/28 02:33:48
tentenreceived 0.737 STEEM, 0.748 SBD, 1.558 SP author reward for @tenten / deep-learning-creating-machines-of-the-future
2018/07/28 02:33:48
| author | tenten |
| permlink | deep-learning-creating-machines-of-the-future |
| sbd payout | 0.748 SBD |
| steem payout | 0.737 STEEM |
| vesting payout | 2533.966308 VESTS |
| Transaction Info | Block #24559417/Virtual Operation #6 |
View Raw JSON Data
{
"block": 24559417,
"op": [
"author_reward",
{
"author": "tenten",
"permlink": "deep-learning-creating-machines-of-the-future",
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"steem_payout": "0.737 STEEM",
"vesting_payout": "2533.966308 VESTS"
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"op_in_trx": 0,
"timestamp": "2018-07-28T02:33:48",
"trx_id": "0000000000000000000000000000000000000000",
"trx_in_block": 4294967295,
"virtual_op": 6
}2018/07/25 19:33:15
2018/07/25 19:33:15
| amount | 0.001 SBD |
| from | merlin7 |
| memo | Hi I am lady Merlin..I am new to Steemit..You are awesome.I need your friendship, kindly follow me and i will follow you too.I can get you FREE UPVOTES JUST FOR FRIENDSHIP..Thank you dear.. |
| to | tenten |
| Transaction Info | Block #24493489/Trx 24573570c5b24ae76fda1489641d724df390397c |
View Raw JSON Data
{
"block": 24493489,
"op": [
"transfer",
{
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"from": "merlin7",
"memo": "Hi I am lady Merlin..I am new to Steemit..You are awesome.I need your friendship, kindly follow me and i will follow you too.I can get you FREE UPVOTES JUST FOR FRIENDSHIP..Thank you dear..",
"to": "tenten"
}
],
"op_in_trx": 0,
"timestamp": "2018-07-25T19:33:15",
"trx_id": "24573570c5b24ae76fda1489641d724df390397c",
"trx_in_block": 30,
"virtual_op": 0
}2018/07/25 14:40:15
2018/07/25 14:40:15
| amount | 0.001 SBD |
| from | merlin7 |
| memo | Hi I am lady Merlin..I am new to Steemit..You are awesome.I need your friendship, kindly follow me and i will follow you too.I can get you FREE UPVOTES JUST FOR FRIENDSHIP..Thank you dear.. |
| to | tenten |
| Transaction Info | Block #24487630/Trx 7fe7f12d6d22c19b3ee1bd4a0ad2663406c0214b |
View Raw JSON Data
{
"block": 24487630,
"op": [
"transfer",
{
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"from": "merlin7",
"memo": "Hi I am lady Merlin..I am new to Steemit..You are awesome.I need your friendship, kindly follow me and i will follow you too.I can get you FREE UPVOTES JUST FOR FRIENDSHIP..Thank you dear..",
"to": "tenten"
}
],
"op_in_trx": 0,
"timestamp": "2018-07-25T14:40:15",
"trx_id": "7fe7f12d6d22c19b3ee1bd4a0ad2663406c0214b",
"trx_in_block": 48,
"virtual_op": 0
}2018/07/23 13:38:24
2018/07/23 13:38:24
| amount | 0.001 SBD |
| from | big-whale |
| memo | Hello Friend , Promote your new post with big-whale . Your post will be more popular and you will find new friends . big-whale provide "Resteem upvote and promo " services . Resteem to more then 16,500+ Followers , Min 105+ Upvote from different accounts , big-whale Upvote with 100% power . Send 1 SBD or STEEM to @big-whale ( URL as memo ) Service Active |
| to | tenten |
| Transaction Info | Block #24428814/Trx 6403b6191678c8225e72373926c60e24900d6d90 |
View Raw JSON Data
{
"block": 24428814,
"op": [
"transfer",
{
"amount": "0.001 SBD",
"from": "big-whale",
"memo": "Hello Friend , Promote your new post with big-whale . Your post will be more popular and you will find new friends . big-whale provide \"Resteem upvote and promo \" services . Resteem to more then 16,500+ Followers , Min 105+ Upvote from different accounts , big-whale Upvote with 100% power . Send 1 SBD or STEEM to @big-whale ( URL as memo ) Service Active",
"to": "tenten"
}
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}minhnguyen1994upvoted (100.00%) @tenten / deep-learning-creating-machines-of-the-future2018/07/22 10:23:09
minhnguyen1994upvoted (100.00%) @tenten / deep-learning-creating-machines-of-the-future
2018/07/22 10:23:09
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}sensationupvoted (100.00%) @tenten / deep-learning-creating-machines-of-the-future2018/07/21 03:54:21
sensationupvoted (100.00%) @tenten / deep-learning-creating-machines-of-the-future
2018/07/21 03:54:21
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}moby-dickupvoted (100.00%) @tenten / deep-learning-creating-machines-of-the-future2018/07/21 03:42:48
moby-dickupvoted (100.00%) @tenten / deep-learning-creating-machines-of-the-future
2018/07/21 03:42:48
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}trevieupvoted (100.00%) @tenten / deep-learning-creating-machines-of-the-future2018/07/21 02:54:18
trevieupvoted (100.00%) @tenten / deep-learning-creating-machines-of-the-future
2018/07/21 02:54:18
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}tentenpublished a new post: deep-learning-creating-machines-of-the-future2018/07/21 02:48:30
tentenpublished a new post: deep-learning-creating-machines-of-the-future
2018/07/21 02:48:30
| author | tenten |
| body | *Deep learning is not actually a technological breakthrough all by itself, it is a branch of learning technology. To understand what it means, one has to first grab the relationship between it, machine learning and artificial intelligence.* **What is Machine Learning?** This is a learning technology which permeates major aspect of the modern society. Its use include recognition of objects in images, transcribing of speeches, and production of relevant results of searches, among others. Machine learning technology does these activities by using algorithms to generate insights from data. However, Machine learning is just a set under Artificial Learning. **What then is Artificial Learning?** Artificial learning is one of the biggest breakthrough when it comes to technology. It attempts at making machine to think intelligently and predict more accurately. ### DEEP LEARNING AS A BRANCH OF MACHINE LEARNING .jpg) Deep learning is not in by itself as said earlier when it comes to Machine learning and Artificial Intelligence (AI). Having established this clarification, what then is Deep Learning? We mentioned earlier that Machine learning uses algorithms to generate insights from data. Well, Deep Learning specifically uses one of those algorithms called Neural Networks to generate insights. It is one of those algorithms which has been described as being quick to predict things. Machine learning has been for a long time but it had not been able to help achieve task successfully. You have been wondering why Facebook has been successful in identifying faces in photographs. Well, that is what Deep Learning does. Google also employs Deep learning in managing energy use at its data centers. As a result, Google has been able to reduce energy use. Also, Deep learning makes work accessible. Before we go on to talk about the things you must know about deep learning, we need to look into what Neural Network mean? Inter-connected artificial neurons form Neural Networks. These neurons pass data among themselves and through weigh and biases, an output is given based on prediction. ### NEURAL NETWORKS Neural nets are algorithms which depend on the mathematical experimentation of Calculus and Algebra. However, most of what occurs is biological representation. It is important to state that neural networks has an inspiration from cerebral cortex while we have layers of interconnected perceptrons at the rudimentary level. To produce successful prediction, input passes through these multi-layers of perceptrons. The output may be a node if the output is just a number while it may be more if the problem is multi-classified. Each of the node has a weight by which it multiplies its input value. It is necessary to state that the neurons of neural networks have tow linear components labelled as weight and bias. Every input which enters the neuron has a weight attached to it and it represents how genuine or not the input is in relation to its task. The bias on the other hand, is added to the result of the weight multiplication. ### LAYERS Here, we have the input, hidden and output layers as the layers of a Neural Networks. An input layer is the first and it receives the data while the output layer is the final which produces the generated result. In-between these layers is the hidden layer which is otherwise referred to as the Processing Layer. Its function is to perform certain tasks on the incoming data and then pass over to the next layer. ### STEPS OF DEEP LEARNING It is also important to know that deep learning has two steps. The first is analysis of data to generate the algorithm that match the features of that object while the second step is to use the algorithm to identify the object based on real data provided. ### DEEP LEARNING ARCHITECTURE Deep learning architecture has a quite complex categorization. However, it is important that they are understood in order to get to know how its data analysis work. We have: -**Generative Deep Architectures**: are intended to attribute the high-level correlation properties of the identified data for pattern analysis, the correlated numerical data and classes. However, through rules like Bayes, it could be turned to a Discriminative Architecture. -**Discriminative Deep Architectures**: are meant to provide discriminative power directly for pattern distribution. It features posterior distribution of classes in relation to physical data. -**Hybrid Deep Architectures**: While the aim is discriminative power, it is largely aided with the outputs of generative deep architectures as it turned out that the discriminative power is used to study parameters in any of generative architectures model. ## 6. MACHINE AND DEEP LEARNING SYSTEM The machine and deep learning system comprises: -**Target function**: which is the task being learnt in order to carry it out. -**Performance Element**: the components that execute an action in the world. -**Training Data**: is the data required to carry out the target function. -**Learning Algorithm**: is the algorithm which employs the training data in carrying out the approximation of the target function. -**Hypothesis Space**: is the area learning algorithm can consider for likely target function. ## 7. DEEP LEARNING MODELS -**Deep Feed Forward Networks** Also referred to as Feed-Forward Neural Networks or Multi-layers Perceptrons, they are the most important deep learning models. Its basic goal is to approximate some functions (f). From a clearer perspective, these networks can be described as having input, hidden and output nodes. The approximation is derived when data enters through the input nodes, the hidden nodes processes the data while result is produced through the output nodes. The models is called feed forward because there is no connection passage through the output is fed back into the network. -**Convolution Networks (CNN/ COV NETS)** This is an artificial feed-forward networks in which the pattern of connection between the neurons is informed by the pattern of animal visual cortex. Each of the cortical neuron reacts to stimuli in their individual receptive field and can be mathematically approximated by the operation of convolution. The convolution networks is basically patterned to reduce the workload of preprocessing. The four major components of Convolution networks are: Convolutional Layer, Activation Function, Pooling Layer and Fully Connected Layer. The first Convolution Networks which has helped to promote Deep Learning is LeNets which was employed mainly in character recognition functions. -**Recurrent Neural Networks (RNN)** When output is dependent on the previous computation, Recurrent Neural Networks is needed to perform the task. It has a dependable memory which helps to recover what has been calculated so far. RNN is an architecture which has loops which enable it to read input while also carrying information across neurons. Recurrent Neural Networks has been useful in machine translations, analysis of video, computer vision, image generation and captioning, among others. One of the good things about RNN is that it allows any number of output and input to be fixed together. Deep learning models are highly capable of simulating the human brain and can therefore be used to carry out many tasks. What are the areas of applications? Since its emergence, deep learning has permeated various fields of human endeavor. The reason is not so far from the fact that it is capable of simulating human brain. Also, it has been found to produce result far better than when carried out by human. Some of the areas where it has successfully produced amazing results are: -Colour effects on black and white images which uses mostly large convolutional neural networks. Through this, deep learning has been able to recreate images with amazing colour effects. -**Object Identification and Captioning**: Using Convolutional Neural Networks, images and objects within photographs have been successfully identified and captioned. -**Automatic Handwriting Generation**: With a handwriting example given, it has been able to develop new handwritings for a given word or phrase. -**Automatic Game Playing**: With this task, a model learns to play computer games based on the pixels displayed on the screen. This task is quite difficult and it is one of the breakthrough that it is renowned for achieving. -**Generative Model Chatbots**: With a training on a serious and real conversational pattern, deep learning has been able to develop a model chatbots that can generate its own answers. The generative bots have been described as the smartest. Other areas of applications include: Bioinformatics, Audio and Video Recognition, among others. One of the area in which it is yet to achieve this goal is the field of Hand-crafted feature engineering although it has made it less complicated. Meanwhile, quite a lot are being asked as to the confidence one must put in machine learning technologies. You may as well be worried especially in the strength and durability of machine learning. While some others worry about the displacement of man from his duty. The truth however, is that irrespective of the breakthroughs in machine and deep learning, there is still the unalienable role man has to play. There is still a need for human touch. These machines as at now, cannot compete with the human brain. At most points while carrying out tasks, they still require the touch of human in order to carry out the tasks effectively. Maybe in decades to come, machines would get there. But it is certainly not now. *Machine learning is becoming more and more relevant in the human world. Every day, new architectures are being modelled. Deep learning which is a branch of machine learning is breaking grounds as it is capable of learning and predicting more successfully, from structured and unstructured data.* *With the information provided about 7 things you need to know about deep learning, you will find machine learning as a help in respect to multi-tasking and not a threat.* |
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"body": "*Deep learning is not actually a technological breakthrough all by itself, it is a branch of learning technology. To understand what it means, one has to first grab the relationship between it, machine learning and artificial intelligence.*\n **What is Machine Learning?**\n This is a learning technology which permeates major aspect of the modern society. Its use include recognition of objects in images, transcribing of speeches, and production of relevant results of searches, among others. Machine learning technology does these activities by using algorithms to generate insights from data. However, Machine learning is just a set under Artificial Learning. \n**What then is Artificial Learning?**\n Artificial learning is one of the biggest breakthrough when it comes to technology. It attempts at making machine to think intelligently and predict more accurately. \n### DEEP LEARNING AS A BRANCH OF MACHINE LEARNING\n.jpg)\nDeep learning is not in by itself as said earlier when it comes to Machine learning and Artificial Intelligence (AI).\nHaving established this clarification, what then is Deep Learning? We mentioned earlier that Machine learning uses algorithms to generate insights from data. Well, Deep Learning specifically uses one of those algorithms called Neural Networks to generate insights. It is one of those algorithms which has been described as being quick to predict things. Machine learning has been for a long time but it had not been able to help achieve task successfully.\nYou have been wondering why Facebook has been successful in identifying faces in photographs. Well, that is what Deep Learning does. Google also employs Deep learning in managing energy use at its data centers. As a result, Google has been able to reduce energy use. Also, Deep learning makes work accessible.\nBefore we go on to talk about the things you must know about deep learning, we need to look into what Neural Network mean? Inter-connected artificial neurons form Neural Networks. These neurons pass data among themselves and through weigh and biases, an output is given based on prediction.\n\n### NEURAL NETWORKS\nNeural nets are algorithms which depend on the mathematical experimentation of Calculus and Algebra. However, most of what occurs is biological representation. It is important to state that neural networks has an inspiration from cerebral cortex while we have layers of interconnected perceptrons at the rudimentary level. To produce successful prediction, input passes through these multi-layers of perceptrons. The output may be a node if the output is just a number while it may be more if the problem is multi-classified. Each of the node has a weight by which it multiplies its input value.\nIt is necessary to state that the neurons of neural networks have tow linear components labelled as weight and bias. Every input which enters the neuron has a weight attached to it and it represents how genuine or not the input is in relation to its task. The bias on the other hand, is added to the result of the weight multiplication.\n\n### LAYERS\nHere, we have the input, hidden and output layers as the layers of a Neural Networks. An input layer is the first and it receives the data while the output layer is the final which produces the generated result. In-between these layers is the hidden layer which is otherwise referred to as the Processing Layer. Its function is to perform certain tasks on the incoming data and then pass over to the next layer.\n\n### STEPS OF DEEP LEARNING\nIt is also important to know that deep learning has two steps. The first is analysis of data to generate the algorithm that match the features of that object while the second step is to use the algorithm to identify the object based on real data provided.\n\n### DEEP LEARNING ARCHITECTURE\nDeep learning architecture has a quite complex categorization. However, it is important that they are understood in order to get to know how its data analysis work. We have:\n-**Generative Deep Architectures**: are intended to attribute the high-level correlation properties of the identified data for pattern analysis, the correlated numerical data and classes. However, through rules like Bayes, it could be turned to a Discriminative Architecture.\n-**Discriminative Deep Architectures**: are meant to provide discriminative power directly for pattern distribution. It features posterior distribution of classes in relation to physical data.\n-**Hybrid Deep Architectures**: While the aim is discriminative power, it is largely aided with the outputs of generative deep architectures as it turned out that the discriminative power is used to study parameters in any of generative architectures model.\n## 6. MACHINE AND DEEP LEARNING SYSTEM\nThe machine and deep learning system comprises:\n-**Target function**: which is the task being learnt in order to carry it out.\n-**Performance Element**: the components that execute an action in the world.\n-**Training Data**: is the data required to carry out the target function.\n-**Learning Algorithm**: is the algorithm which employs the training data in carrying out the approximation of the target function.\n-**Hypothesis Space**: is the area learning algorithm can consider for likely target function.\n## 7. DEEP LEARNING MODELS\n-**Deep Feed Forward Networks**\nAlso referred to as Feed-Forward Neural Networks or Multi-layers Perceptrons, they are the most important deep learning models. Its basic goal is to approximate some functions (f). From a clearer perspective, these networks can be described as having input, hidden and output nodes. The approximation is derived when data enters through the input nodes, the hidden nodes processes the data while result is produced through the output nodes.\nThe models is called feed forward because there is no connection passage through the output is fed back into the network.\n\n-**Convolution Networks (CNN/ COV NETS)**\nThis is an artificial feed-forward networks in which the pattern of connection between the neurons is informed by the pattern of animal visual cortex. Each of the cortical neuron reacts to stimuli in their individual receptive field and can be mathematically approximated by the operation of convolution.\nThe convolution networks is basically patterned to reduce the workload of preprocessing. The four major components of Convolution networks are: Convolutional Layer, Activation Function, Pooling Layer and Fully Connected Layer. \nThe first Convolution Networks which has helped to promote Deep Learning is LeNets which was employed mainly in character recognition functions. \n\n-**Recurrent Neural Networks (RNN)**\nWhen output is dependent on the previous computation, Recurrent Neural Networks is needed to perform the task. It has a dependable memory which helps to recover what has been calculated so far. RNN is an architecture which has loops which enable it to read input while also carrying information across neurons.\nRecurrent Neural Networks has been useful in machine translations, analysis of video, computer vision, image generation and captioning, among others. One of the good things about RNN is that it allows any number of output and input to be fixed together.\n\nDeep learning models are highly capable of simulating the human brain and can therefore be used to carry out many tasks.\nWhat are the areas of applications?\nSince its emergence, deep learning has permeated various fields of human endeavor. The reason is not so far from the fact that it is capable of simulating human brain. Also, it has been found to produce result far better than when carried out by human. Some of the areas where it has successfully produced amazing results are:\n\n-Colour effects on black and white images which uses mostly large convolutional neural networks. Through this, deep learning has been able to recreate images with amazing colour effects.\n\n-**Object Identification and Captioning**: Using Convolutional Neural Networks, images and objects within photographs have been successfully identified and captioned.\n\n-**Automatic Handwriting Generation**: With a handwriting example given, it has been able to develop new handwritings for a given word or phrase.\n\n-**Automatic Game Playing**: With this task, a model learns to play computer games based on the pixels displayed on the screen. This task is quite difficult and it is one of the breakthrough that it is renowned for achieving.\n\n-**Generative Model Chatbots**: With a training on a serious and real conversational pattern, deep learning has been able to develop a model chatbots that can generate its own answers. The generative bots have been described as the smartest.\n\nOther areas of applications include: Bioinformatics, Audio and Video Recognition, among others. One of the area in which it is yet to achieve this goal is the field of Hand-crafted feature engineering although it has made it less complicated.\nMeanwhile, quite a lot are being asked as to the confidence one must put in machine learning technologies. You may as well be worried especially in the strength and durability of machine learning. While some others worry about the displacement of man from his duty. The truth however, is that irrespective of the breakthroughs in machine and deep learning, there is still the unalienable role man has to play. There is still a need for human touch. These machines as at now, cannot compete with the human brain. At most points while carrying out tasks, they still require the touch of human in order to carry out the tasks effectively. Maybe in decades to come, machines would get there. But it is certainly not now.\n\n\n*Machine learning is becoming more and more relevant in the human world. Every day, new architectures are being modelled. Deep learning which is a branch of machine learning is breaking grounds as it is capable of learning and predicting more successfully, from structured and unstructured data.*\n *With the information provided about 7 things you need to know about deep learning, you will find machine learning as a help in respect to multi-tasking and not a threat.*",
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}tentenupvoted (100.00%) @paragon99 / 80-year-old-man-gives-advice-on-emotional-intelligence2018/07/21 02:47:00
tentenupvoted (100.00%) @paragon99 / 80-year-old-man-gives-advice-on-emotional-intelligence
2018/07/21 02:47:00
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2018/07/21 02:42:33
| author | tts |
| body | To listen to the audio version of this article click on the play image. [](http://ec2-52-72-169-104.compute-1.amazonaws.com/tenten__deep-learning-creating-machines-of-the-future.mp3) Brought to you by [@tts](https://steemit.com/tts/@tts/introduction). If you find it useful please consider upvoting this reply. |
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2018/07/21 02:40:09
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| memo | Greetings! Want to promote your post? Get more upvotes and followers with our resteem and upvote service! Get your post resteemed to 10,000+ followers, a minimum of 40+ upvotes, and a @anonwhale upvote (1200 STEEM POWER)! Send 1.000 SBD or 0.800 STEEM to @anonwhale with your post URL as the memo! |
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}tentenupvoted (100.00%) @tenten / deep-learning-creating-machines-of-the-future2018/07/21 02:34:15
tentenupvoted (100.00%) @tenten / deep-learning-creating-machines-of-the-future
2018/07/21 02:34:15
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}tentenpublished a new post: deep-learning-creating-machines-of-the-future2018/07/21 02:33:48
tentenpublished a new post: deep-learning-creating-machines-of-the-future
2018/07/21 02:33:48
| author | tenten |
| body | *Deep learning is not actually a technological breakthrough all by itself, it is a branch of learning technology. To understand what it means, one has to first grab the relationship between it, machine learning and artificial intelligence.* **What is Machine Learning?** This is a learning technology which permeates major aspect of the modern society. Its use include recognition of objects in images, transcribing of speeches, and production of relevant results of searches, among others. Machine learning technology does these activities by using algorithms to generate insights from data. However, Machine learning is just a set under Artificial Learning. **What then is Artificial Learning?** Artificial learning is one of the biggest breakthrough when it comes to technology. It attempts at making machine to think intelligently and predict more accurately. ### DEEP LEARNING AS A BRANCH OF MACHINE LEARNING .jpg) Deep learning is not in by itself as said earlier when it comes to Machine learning and Artificial Intelligence (AI). Having established this clarification, what then is Deep Learning? We mentioned earlier that Machine learning uses algorithms to generate insights from data. Well, Deep Learning specifically uses one of those algorithms called Neural Networks to generate insights. It is one of those algorithms which has been described as being quick to predict things. Machine learning has been for a long time but it had not been able to help achieve task successfully. You have been wondering why Facebook has been successful in identifying faces in photographs. Well, that is what Deep Learning does. Google also employs Deep learning in managing energy use at its data centers. As a result, Google has been able to reduce energy use. Also, Deep learning makes work accessible. Before we go on to talk about the things you must know about deep learning, we need to look into what Neural Network mean? Inter-connected artificial neurons form Neural Networks. These neurons pass data among themselves and through weigh and biases, an output is given based on prediction. ### NEURAL NETWORKS Neural nets are algorithms which depend on the mathematical experimentation of Calculus and Algebra. However, most of what occurs is biological representation. It is important to state that neural networks has an inspiration from cerebral cortex while we have layers of interconnected perceptrons at the rudimentary level. To produce successful prediction, input passes through these multi-layers of perceptrons. The output may be a node if the output is just a number while it may be more if the problem is multi-classified. Each of the node has a weight by which it multiplies its input value. It is necessary to state that the neurons of neural networks have tow linear components labelled as weight and bias. Every input which enters the neuron has a weight attached to it and it represents how genuine or not the input is in relation to its task. The bias on the other hand, is added to the result of the weight multiplication. ### LAYERS Here, we have the input, hidden and output layers as the layers of a Neural Networks. An input layer is the first and it receives the data while the output layer is the final which produces the generated result. In-between these layers is the hidden layer which is otherwise referred to as the Processing Layer. Its function is to perform certain tasks on the incoming data and then pass over to the next layer. ### STEPS OF DEEP LEARNING It is also important to know that deep learning has two steps. The first is analysis of data to generate the algorithm that match the features of that object while the second step is to use the algorithm to identify the object based on real data provided. ### DEEP LEARNING ARCHITECTURE Deep learning architecture has a quite complex categorization. However, it is important that they are understood in order to get to know how its data analysis work. We have: -**Generative Deep Architectures**: are intended to attribute the high-level correlation properties of the identified data for pattern analysis, the correlated numerical data and classes. However, through rules like Bayes, it could be turned to a Discriminative Architecture. -**Discriminative Deep Architectures**: are meant to provide discriminative power directly for pattern distribution. It features posterior distribution of classes in relation to physical data. -**Hybrid Deep Architectures**: While the aim is discriminative power, it is largely aided with the outputs of generative deep architectures as it turned out that the discriminative power is used to study parameters in any of generative architectures model. ## 6. MACHINE AND DEEP LEARNING SYSTEM The machine and deep learning system comprises: -**Target function**: which is the task being learnt in order to carry it out. -**Performance Element**: the components that execute an action in the world. -**Training Data**: is the data required to carry out the target function. -**Learning Algorithm**: is the algorithm which employs the training data in carrying out the approximation of the target function. -**Hypothesis Space**: is the area learning algorithm can consider for likely target function. ## 7. DEEP LEARNING MODELS -**Deep Feed Forward Networks** Also referred to as Feed-Forward Neural Networks or Multi-layers Perceptrons, they are the most important deep learning models. Its basic goal is to approximate some functions (f). From a clearer perspective, these networks can be described as having input, hidden and output nodes. The approximation is derived when data enters through the input nodes, the hidden nodes processes the data while result is produced through the output nodes. The models is called feed forward because there is no connection passage through the output is fed back into the network. -**Convolution Networks (CNN/ COV NETS)** This is an artificial feed-forward networks in which the pattern of connection between the neurons is informed by the pattern of animal visual cortex. Each of the cortical neuron reacts to stimuli in their individual receptive field and can be mathematically approximated by the operation of convolution. The convolution networks is basically patterned to reduce the workload of preprocessing. The four major components of Convolution networks are: Convolutional Layer, Activation Function, Pooling Layer and Fully Connected Layer. The first Convolution Networks which has helped to promote Deep Learning is LeNets which was employed mainly in character recognition functions. -**Recurrent Neural Networks (RNN)** When output is dependent on the previous computation, Recurrent Neural Networks is needed to perform the task. It has a dependable memory which helps to recover what has been calculated so far. RNN is an architecture which has loops which enable it to read input while also carrying information across neurons. Recurrent Neural Networks has been useful in machine translations, analysis of video, computer vision, image generation and captioning, among others. One of the good things about RNN is that it allows any number of output and input to be fixed together. Deep learning models are highly capable of simulating the human brain and can therefore be used to carry out many tasks. What are the areas of applications? Since its emergence, deep learning has permeated various fields of human endeavor. The reason is not so far from the fact that it is capable of simulating human brain. Also, it has been found to produce result far better than when carried out by human. Some of the areas where it has successfully produced amazing results are: -Colour effects on black and white images which uses mostly large convolutional neural networks. Through this, deep learning has been able to recreate images with amazing colour effects. -**Object Identification and Captioning**: Using Convolutional Neural Networks, images and objects within photographs have been successfully identified and captioned. -**Automatic Handwriting Generation**: With a handwriting example given, it has been able to develop new handwritings for a given word or phrase. -**Automatic Game Playing**: With this task, a model learns to play computer games based on the pixels displayed on the screen. This task is quite difficult and it is one of the breakthrough that it is renowned for achieving. -**Generative Model Chatbots**: With a training on a serious and real conversational pattern, deep learning has been able to develop a model chatbots that can generate its own answers. The generative bots have been described as the smartest. Other areas of applications include: Bioinformatics, Audio and Video Recognition, among others. One of the area in which it is yet to achieve this goal is the field of Hand-crafted feature engineering although it has made it less complicated. Meanwhile, quite a lot are being asked as to the confidence one must put in machine learning technologies. You may as well be worried especially in the strength and durability of machine learning. While some others worry about the displacement of man from his duty. The truth however, is that irrespective of the breakthroughs in machine and deep learning, there is still the unalienable role man has to play. There is still a need for human touch. These machines as at now, cannot compete with the human brain. At most points while carrying out tasks, they still require the touch of human in order to carry out the tasks effectively. Maybe in decades to come, machines would get there. But it is certainly not now. *Machine learning is becoming more and more relevant in the human world. Every day, new architectures are being modelled. Deep learning which is a branch of machine learning is breaking grounds as it is capable of learning and predicting more successfully, from structured and unstructured data.* *With the information provided about 7 things you need to know about deep learning, you will find machine learning as a help in respect to multi-tasking and not a threat.* |
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| permlink | deep-learning-creating-machines-of-the-future |
| title | Deep Learning: Creating Machines Of The Future |
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"body": "*Deep learning is not actually a technological breakthrough all by itself, it is a branch of learning technology. To understand what it means, one has to first grab the relationship between it, machine learning and artificial intelligence.*\n **What is Machine Learning?**\n This is a learning technology which permeates major aspect of the modern society. Its use include recognition of objects in images, transcribing of speeches, and production of relevant results of searches, among others. Machine learning technology does these activities by using algorithms to generate insights from data. However, Machine learning is just a set under Artificial Learning. \n**What then is Artificial Learning?**\n Artificial learning is one of the biggest breakthrough when it comes to technology. It attempts at making machine to think intelligently and predict more accurately. \n### DEEP LEARNING AS A BRANCH OF MACHINE LEARNING\n.jpg)\nDeep learning is not in by itself as said earlier when it comes to Machine learning and Artificial Intelligence (AI).\nHaving established this clarification, what then is Deep Learning? We mentioned earlier that Machine learning uses algorithms to generate insights from data. Well, Deep Learning specifically uses one of those algorithms called Neural Networks to generate insights. It is one of those algorithms which has been described as being quick to predict things. Machine learning has been for a long time but it had not been able to help achieve task successfully.\nYou have been wondering why Facebook has been successful in identifying faces in photographs. Well, that is what Deep Learning does. Google also employs Deep learning in managing energy use at its data centers. As a result, Google has been able to reduce energy use. Also, Deep learning makes work accessible.\nBefore we go on to talk about the things you must know about deep learning, we need to look into what Neural Network mean? Inter-connected artificial neurons form Neural Networks. These neurons pass data among themselves and through weigh and biases, an output is given based on prediction.\n\n### NEURAL NETWORKS\nNeural nets are algorithms which depend on the mathematical experimentation of Calculus and Algebra. However, most of what occurs is biological representation. It is important to state that neural networks has an inspiration from cerebral cortex while we have layers of interconnected perceptrons at the rudimentary level. To produce successful prediction, input passes through these multi-layers of perceptrons. The output may be a node if the output is just a number while it may be more if the problem is multi-classified. Each of the node has a weight by which it multiplies its input value.\nIt is necessary to state that the neurons of neural networks have tow linear components labelled as weight and bias. Every input which enters the neuron has a weight attached to it and it represents how genuine or not the input is in relation to its task. The bias on the other hand, is added to the result of the weight multiplication.\n\n### LAYERS\nHere, we have the input, hidden and output layers as the layers of a Neural Networks. An input layer is the first and it receives the data while the output layer is the final which produces the generated result. In-between these layers is the hidden layer which is otherwise referred to as the Processing Layer. Its function is to perform certain tasks on the incoming data and then pass over to the next layer.\n\n### STEPS OF DEEP LEARNING\nIt is also important to know that deep learning has two steps. The first is analysis of data to generate the algorithm that match the features of that object while the second step is to use the algorithm to identify the object based on real data provided.\n\n### DEEP LEARNING ARCHITECTURE\nDeep learning architecture has a quite complex categorization. However, it is important that they are understood in order to get to know how its data analysis work. We have:\n-**Generative Deep Architectures**: are intended to attribute the high-level correlation properties of the identified data for pattern analysis, the correlated numerical data and classes. However, through rules like Bayes, it could be turned to a Discriminative Architecture.\n-**Discriminative Deep Architectures**: are meant to provide discriminative power directly for pattern distribution. It features posterior distribution of classes in relation to physical data.\n-**Hybrid Deep Architectures**: While the aim is discriminative power, it is largely aided with the outputs of generative deep architectures as it turned out that the discriminative power is used to study parameters in any of generative architectures model.\n## 6. MACHINE AND DEEP LEARNING SYSTEM\nThe machine and deep learning system comprises:\n-**Target function**: which is the task being learnt in order to carry it out.\n-**Performance Element**: the components that execute an action in the world.\n-**Training Data**: is the data required to carry out the target function.\n-**Learning Algorithm**: is the algorithm which employs the training data in carrying out the approximation of the target function.\n-**Hypothesis Space**: is the area learning algorithm can consider for likely target function.\n## 7. DEEP LEARNING MODELS\n-**Deep Feed Forward Networks**\nAlso referred to as Feed-Forward Neural Networks or Multi-layers Perceptrons, they are the most important deep learning models. Its basic goal is to approximate some functions (f). From a clearer perspective, these networks can be described as having input, hidden and output nodes. The approximation is derived when data enters through the input nodes, the hidden nodes processes the data while result is produced through the output nodes.\nThe models is called feed forward because there is no connection passage through the output is fed back into the network.\n\n-**Convolution Networks (CNN/ COV NETS)**\nThis is an artificial feed-forward networks in which the pattern of connection between the neurons is informed by the pattern of animal visual cortex. Each of the cortical neuron reacts to stimuli in their individual receptive field and can be mathematically approximated by the operation of convolution.\nThe convolution networks is basically patterned to reduce the workload of preprocessing. The four major components of Convolution networks are: Convolutional Layer, Activation Function, Pooling Layer and Fully Connected Layer. \nThe first Convolution Networks which has helped to promote Deep Learning is LeNets which was employed mainly in character recognition functions. \n\n-**Recurrent Neural Networks (RNN)**\nWhen output is dependent on the previous computation, Recurrent Neural Networks is needed to perform the task. It has a dependable memory which helps to recover what has been calculated so far. RNN is an architecture which has loops which enable it to read input while also carrying information across neurons.\nRecurrent Neural Networks has been useful in machine translations, analysis of video, computer vision, image generation and captioning, among others. One of the good things about RNN is that it allows any number of output and input to be fixed together.\n\nDeep learning models are highly capable of simulating the human brain and can therefore be used to carry out many tasks.\nWhat are the areas of applications?\nSince its emergence, deep learning has permeated various fields of human endeavor. The reason is not so far from the fact that it is capable of simulating human brain. Also, it has been found to produce result far better than when carried out by human. Some of the areas where it has successfully produced amazing results are:\n\n-Colour effects on black and white images which uses mostly large convolutional neural networks. Through this, deep learning has been able to recreate images with amazing colour effects.\n\n-**Object Identification and Captioning**: Using Convolutional Neural Networks, images and objects within photographs have been successfully identified and captioned.\n\n-**Automatic Handwriting Generation**: With a handwriting example given, it has been able to develop new handwritings for a given word or phrase.\n\n-**Automatic Game Playing**: With this task, a model learns to play computer games based on the pixels displayed on the screen. This task is quite difficult and it is one of the breakthrough that it is renowned for achieving.\n\n-**Generative Model Chatbots**: With a training on a serious and real conversational pattern, deep learning has been able to develop a model chatbots that can generate its own answers. The generative bots have been described as the smartest.\n\nOther areas of applications include: Bioinformatics, Audio and Video Recognition, among others. One of the area in which it is yet to achieve this goal is the field of Hand-crafted feature engineering although it has made it less complicated.\nMeanwhile, quite a lot are being asked as to the confidence one must put in machine learning technologies. You may as well be worried especially in the strength and durability of machine learning. While some others worry about the displacement of man from his duty. The truth however, is that irrespective of the breakthroughs in machine and deep learning, there is still the unalienable role man has to play. There is still a need for human touch. These machines as at now, cannot compete with the human brain. At most points while carrying out tasks, they still require the touch of human in order to carry out the tasks effectively. Maybe in decades to come, machines would get there. But it is certainly not now.\n\n\n*Machine learning is becoming more and more relevant in the human world. Every day, new architectures are being modelled. Deep learning which is a branch of machine learning is breaking grounds as it is capable of learning and predicting more successfully, from structured and unstructured data.*\n *With the information provided about 7 things you need to know about deep learning, you will find machine learning as a help in respect to multi-tasking and not a threat.*",
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"title": "Deep Learning: Creating Machines Of The Future"
}
],
"op_in_trx": 0,
"timestamp": "2018-07-21T02:33:48",
"trx_id": "bbd3b48889229f55e540a7fad1bf45d898ec4244",
"trx_in_block": 21,
"virtual_op": 0
}tentenupvoted (100.00%) @paragon99 / chief-obafemi-awolowo-a-legend-even-unto-this-time-e49570d7b72352018/06/08 03:11:18
tentenupvoted (100.00%) @paragon99 / chief-obafemi-awolowo-a-legend-even-unto-this-time-e49570d7b7235
2018/06/08 03:11:18
| author | paragon99 |
| permlink | chief-obafemi-awolowo-a-legend-even-unto-this-time-e49570d7b7235 |
| voter | tenten |
| weight | 10000 (100.00%) |
| Transaction Info | Block #23131197/Trx ecfc9a5bcf91dc35de2599d9572bec5d0ba9033e |
View Raw JSON Data
{
"block": 23131197,
"op": [
"vote",
{
"author": "paragon99",
"permlink": "chief-obafemi-awolowo-a-legend-even-unto-this-time-e49570d7b7235",
"voter": "tenten",
"weight": 10000
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],
"op_in_trx": 0,
"timestamp": "2018-06-08T03:11:18",
"trx_id": "ecfc9a5bcf91dc35de2599d9572bec5d0ba9033e",
"trx_in_block": 48,
"virtual_op": 0
}tentenupvoted (100.00%) @paragon99 / a-new-way-to-earn-cryptocurrency-everyday-373c7184227622018/06/06 04:23:24
tentenupvoted (100.00%) @paragon99 / a-new-way-to-earn-cryptocurrency-everyday-373c718422762
2018/06/06 04:23:24
| author | paragon99 |
| permlink | a-new-way-to-earn-cryptocurrency-everyday-373c718422762 |
| voter | tenten |
| weight | 10000 (100.00%) |
| Transaction Info | Block #23075061/Trx 656c2557b753186489e03f08e8c56182bada3eff |
View Raw JSON Data
{
"block": 23075061,
"op": [
"vote",
{
"author": "paragon99",
"permlink": "a-new-way-to-earn-cryptocurrency-everyday-373c718422762",
"voter": "tenten",
"weight": 10000
}
],
"op_in_trx": 0,
"timestamp": "2018-06-06T04:23:24",
"trx_id": "656c2557b753186489e03f08e8c56182bada3eff",
"trx_in_block": 47,
"virtual_op": 0
}tentenupvoted (100.00%) @paragon99 / following-in-the-footsteps-of-surpassinggoogle-c3a92f104edb62018/06/01 10:05:30
tentenupvoted (100.00%) @paragon99 / following-in-the-footsteps-of-surpassinggoogle-c3a92f104edb6
2018/06/01 10:05:30
| author | paragon99 |
| permlink | following-in-the-footsteps-of-surpassinggoogle-c3a92f104edb6 |
| voter | tenten |
| weight | 10000 (100.00%) |
| Transaction Info | Block #22937959/Trx 58448777eb8d43da0d01e233f91c61b918e309e3 |
View Raw JSON Data
{
"block": 22937959,
"op": [
"vote",
{
"author": "paragon99",
"permlink": "following-in-the-footsteps-of-surpassinggoogle-c3a92f104edb6",
"voter": "tenten",
"weight": 10000
}
],
"op_in_trx": 0,
"timestamp": "2018-06-01T10:05:30",
"trx_id": "58448777eb8d43da0d01e233f91c61b918e309e3",
"trx_in_block": 46,
"virtual_op": 0
}2018/05/30 00:35:36
2018/05/30 00:35:36
| author | paragon99 |
| permlink | contest-alert-the-dyalog-apl-problem-solving-competition-ac4c96d68f204 |
| voter | tenten |
| weight | 10000 (100.00%) |
| Transaction Info | Block #22868980/Trx 6c07f22ee705656909af00cd38f3556da365c8b7 |
View Raw JSON Data
{
"block": 22868980,
"op": [
"vote",
{
"author": "paragon99",
"permlink": "contest-alert-the-dyalog-apl-problem-solving-competition-ac4c96d68f204",
"voter": "tenten",
"weight": 10000
}
],
"op_in_trx": 0,
"timestamp": "2018-05-30T00:35:36",
"trx_id": "6c07f22ee705656909af00cd38f3556da365c8b7",
"trx_in_block": 52,
"virtual_op": 0
}tentensent 0.100 SBD to @paragon992018/05/29 23:34:36
tentensent 0.100 SBD to @paragon99
2018/05/29 23:34:36
| amount | 0.100 SBD |
| from | tenten |
| memo | |
| to | paragon99 |
| Transaction Info | Block #22867760/Trx 931a725e8bfd7acb6e9d71a4facb7edb33f79138 |
View Raw JSON Data
{
"block": 22867760,
"op": [
"transfer",
{
"amount": "0.100 SBD",
"from": "tenten",
"memo": "",
"to": "paragon99"
}
],
"op_in_trx": 0,
"timestamp": "2018-05-29T23:34:36",
"trx_id": "931a725e8bfd7acb6e9d71a4facb7edb33f79138",
"trx_in_block": 21,
"virtual_op": 0
}2018/05/29 23:14:27
2018/05/29 23:14:27
| amount | 0.200 SBD |
| from | stach |
| memo | Thank you for participating in the STACH Short Story contest #29 |
| to | tenten |
| Transaction Info | Block #22867357/Trx 08072d1b2e2642757f24c4288f4b34f475469b3c |
View Raw JSON Data
{
"block": 22867357,
"op": [
"transfer",
{
"amount": "0.200 SBD",
"from": "stach",
"memo": "Thank you for participating in the STACH Short Story contest #29",
"to": "tenten"
}
],
"op_in_trx": 0,
"timestamp": "2018-05-29T23:14:27",
"trx_id": "08072d1b2e2642757f24c4288f4b34f475469b3c",
"trx_in_block": 47,
"virtual_op": 0
}tentenupdated options for re-stach-2018529t21211313z2018/05/29 01:12:51
tentenupdated options for re-stach-2018529t21211313z
2018/05/29 01:12:51
| allow curation rewards | true |
| allow votes | true |
| author | tenten |
| extensions | [[0,{"beneficiaries":[{"account":"esteemapp","weight":1000}]}]] |
| max accepted payout | 1000000.000 SBD |
| percent steem dollars | 10000 |
| permlink | re-stach-2018529t21211313z |
| Transaction Info | Block #22840926/Trx 2646ec2f70f40c8585ffe36b854f3e19cb67b290 |
View Raw JSON Data
{
"block": 22840926,
"op": [
"comment_options",
{
"allow_curation_rewards": true,
"allow_votes": true,
"author": "tenten",
"extensions": [
[
0,
{
"beneficiaries": [
{
"account": "esteemapp",
"weight": 1000
}
]
}
]
],
"max_accepted_payout": "1000000.000 SBD",
"percent_steem_dollars": 10000,
"permlink": "re-stach-2018529t21211313z"
}
],
"op_in_trx": 0,
"timestamp": "2018-05-29T01:12:51",
"trx_id": "2646ec2f70f40c8585ffe36b854f3e19cb67b290",
"trx_in_block": 22,
"virtual_op": 0
}tentenreplied to @stach / re-stach-2018529t21211313z2018/05/29 01:12:51
tentenreplied to @stach / re-stach-2018529t21211313z
2018/05/29 01:12:51
| author | tenten |
| body | ### DOWN ON BENDED KNEES #### Catherine Cooper: August 1965 - February 2018 *Edward had found it difficult to believe the news that his mother was dead. He had been sent to Libya on a peace-keeping mission last year. Over there he had lost all means of contacting family members and so was not informed of anything going on at home.* *After a year of incessant fighting to restore peace to the region, his squad had been relieved from the mission and they had returned home together. On getting back to base, he was handed a stack of letters and a list of calls that had come in for him while he was away.* *Opening a random letter, he was confronted with the news of his mother’s burial in April. Abandoning everything else, he rushed down to Abuja, refusing to believe his mother was gone. But it all became real when he was led to where she was buried, with a tombstone mounted.* *He had had great plans for his mother, but now she would not enjoy the fruits of her labor. Going down on bended knees, he dug his hands into the soil, screaming her name.* |
| json metadata | {"tags":["contest","stach","sndbox","writing","nigeria"],"app":"esteem/1.5.1","format":"markdown+html","community":"esteem"} |
| parent author | stach |
| parent permlink | stach-short-story-contest-29-199-words-5-winners-15sb-prize-pool |
| permlink | re-stach-2018529t21211313z |
| title | |
| Transaction Info | Block #22840926/Trx 2646ec2f70f40c8585ffe36b854f3e19cb67b290 |
View Raw JSON Data
{
"block": 22840926,
"op": [
"comment",
{
"author": "tenten",
"body": "### DOWN ON BENDED KNEES\n\n#### Catherine Cooper: August 1965 - February 2018\n\n *Edward had found it difficult to believe the news that his mother was dead. He had been sent to Libya on a peace-keeping mission last year. Over there he had lost all means of contacting family members and so was not informed of anything going on at home.*\n\n *After a year of incessant fighting to restore peace to the region, his squad had been relieved from the mission and they had returned home together. On getting back to base, he was handed a stack of letters and a list of calls that had come in for him while he was away.*\n\n *Opening a random letter, he was confronted with the news of his mother’s burial in April. Abandoning everything else, he rushed down to Abuja, refusing to believe his mother was gone. But it all became real when he was led to where she was buried, with a tombstone mounted.*\n\n *He had had great plans for his mother, but now she would not enjoy the fruits of her labor. Going down on bended knees, he dug his hands into the soil, screaming her name.*",
"json_metadata": "{\"tags\":[\"contest\",\"stach\",\"sndbox\",\"writing\",\"nigeria\"],\"app\":\"esteem/1.5.1\",\"format\":\"markdown+html\",\"community\":\"esteem\"}",
"parent_author": "stach",
"parent_permlink": "stach-short-story-contest-29-199-words-5-winners-15sb-prize-pool",
"permlink": "re-stach-2018529t21211313z",
"title": ""
}
],
"op_in_trx": 0,
"timestamp": "2018-05-29T01:12:51",
"trx_id": "2646ec2f70f40c8585ffe36b854f3e19cb67b290",
"trx_in_block": 22,
"virtual_op": 0
}tentenupvoted (100.00%) @stach / stach-short-story-contest-29-199-words-5-winners-15sb-prize-pool2018/05/29 01:11:33
tentenupvoted (100.00%) @stach / stach-short-story-contest-29-199-words-5-winners-15sb-prize-pool
2018/05/29 01:11:33
| author | stach |
| permlink | stach-short-story-contest-29-199-words-5-winners-15sb-prize-pool |
| voter | tenten |
| weight | 10000 (100.00%) |
| Transaction Info | Block #22840900/Trx a020378bd60a5ce3e0994d183b31213c4000af48 |
View Raw JSON Data
{
"block": 22840900,
"op": [
"vote",
{
"author": "stach",
"permlink": "stach-short-story-contest-29-199-words-5-winners-15sb-prize-pool",
"voter": "tenten",
"weight": 10000
}
],
"op_in_trx": 0,
"timestamp": "2018-05-29T01:11:33",
"trx_id": "a020378bd60a5ce3e0994d183b31213c4000af48",
"trx_in_block": 15,
"virtual_op": 0
}2018/05/29 01:11:21
2018/05/29 01:11:21
| id | follow |
| json | ["follow",{"follower":"tenten","following":"stach","what":["blog"]}] |
| required auths | [] |
| required posting auths | ["tenten"] |
| Transaction Info | Block #22840896/Trx d5615a907901270c198d0c69aca3aff2980e3e69 |
View Raw JSON Data
{
"block": 22840896,
"op": [
"custom_json",
{
"id": "follow",
"json": "[\"follow\",{\"follower\":\"tenten\",\"following\":\"stach\",\"what\":[\"blog\"]}]",
"required_auths": [],
"required_posting_auths": [
"tenten"
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}
],
"op_in_trx": 0,
"timestamp": "2018-05-29T01:11:21",
"trx_id": "d5615a907901270c198d0c69aca3aff2980e3e69",
"trx_in_block": 31,
"virtual_op": 0
}2018/05/27 18:34:39
2018/05/27 18:34:39
| delegatee | tenten |
| delegator | steem |
| vesting shares | 26031.448428 VESTS |
| Transaction Info | Block #22804166/Trx 447ae3163fae5ad81017f2140ec29deb028579dc |
View Raw JSON Data
{
"block": 22804166,
"op": [
"delegate_vesting_shares",
{
"delegatee": "tenten",
"delegator": "steem",
"vesting_shares": "26031.448428 VESTS"
}
],
"op_in_trx": 0,
"timestamp": "2018-05-27T18:34:39",
"trx_id": "447ae3163fae5ad81017f2140ec29deb028579dc",
"trx_in_block": 37,
"virtual_op": 0
}tentenclaimed reward balance: 0.329 SBD, 0.149 SP2018/05/27 13:46:36
tentenclaimed reward balance: 0.329 SBD, 0.149 SP
2018/05/27 13:46:36
| account | tenten |
| reward sbd | 0.329 SBD |
| reward steem | 0.000 STEEM |
| reward vests | 242.016412 VESTS |
| Transaction Info | Block #22798406/Trx 7bb9504270cc1ab85a5304c9590eddb7c13adaf6 |
View Raw JSON Data
{
"block": 22798406,
"op": [
"claim_reward_balance",
{
"account": "tenten",
"reward_sbd": "0.329 SBD",
"reward_steem": "0.000 STEEM",
"reward_vests": "242.016412 VESTS"
}
],
"op_in_trx": 0,
"timestamp": "2018-05-27T13:46:36",
"trx_id": "7bb9504270cc1ab85a5304c9590eddb7c13adaf6",
"trx_in_block": 52,
"virtual_op": 0
}tentenreceived 0.329 SBD, 0.149 SP author reward for @tenten / re-tribesteemup-2018520t73320730z2018/05/27 06:33:24
tentenreceived 0.329 SBD, 0.149 SP author reward for @tenten / re-tribesteemup-2018520t73320730z
2018/05/27 06:33:24
| author | tenten |
| permlink | re-tribesteemup-2018520t73320730z |
| sbd payout | 0.329 SBD |
| steem payout | 0.000 STEEM |
| vesting payout | 242.016412 VESTS |
| Transaction Info | Block #22789742/Virtual Operation #9 |
View Raw JSON Data
{
"block": 22789742,
"op": [
"author_reward",
{
"author": "tenten",
"permlink": "re-tribesteemup-2018520t73320730z",
"sbd_payout": "0.329 SBD",
"steem_payout": "0.000 STEEM",
"vesting_payout": "242.016412 VESTS"
}
],
"op_in_trx": 0,
"timestamp": "2018-05-27T06:33:24",
"trx_id": "0000000000000000000000000000000000000000",
"trx_in_block": 4294967295,
"virtual_op": 9
}2018/05/27 06:33:24
2018/05/27 06:33:24
| author | tenten |
| benefactor | esteemapp |
| permlink | re-tribesteemup-2018520t73320730z |
| sbd payout | 0.000 SBD |
| steem payout | 0.000 STEEM |
| vesting payout | 52.877535 VESTS |
| Transaction Info | Block #22789742/Virtual Operation #8 |
View Raw JSON Data
{
"block": 22789742,
"op": [
"comment_benefactor_reward",
{
"author": "tenten",
"benefactor": "esteemapp",
"permlink": "re-tribesteemup-2018520t73320730z",
"sbd_payout": "0.000 SBD",
"steem_payout": "0.000 STEEM",
"vesting_payout": "52.877535 VESTS"
}
],
"op_in_trx": 0,
"timestamp": "2018-05-27T06:33:24",
"trx_id": "0000000000000000000000000000000000000000",
"trx_in_block": 4294967295,
"virtual_op": 8
}tentenclaimed reward balance: 0.001 SP2018/05/27 06:15:27
tentenclaimed reward balance: 0.001 SP
2018/05/27 06:15:27
| account | tenten |
| reward sbd | 0.000 SBD |
| reward steem | 0.000 STEEM |
| reward vests | 2.034572 VESTS |
| Transaction Info | Block #22789385/Trx 52427edd66b6434951215313c5b962112eea7049 |
View Raw JSON Data
{
"block": 22789385,
"op": [
"claim_reward_balance",
{
"account": "tenten",
"reward_sbd": "0.000 SBD",
"reward_steem": "0.000 STEEM",
"reward_vests": "2.034572 VESTS"
}
],
"op_in_trx": 0,
"timestamp": "2018-05-27T06:15:27",
"trx_id": "52427edd66b6434951215313c5b962112eea7049",
"trx_in_block": 47,
"virtual_op": 0
}2018/05/22 05:46:15
2018/05/22 05:46:15
| author | paragon99 |
| permlink | ulogging-at-midnight-i-have-some-information-you-might-be-interested-in |
| voter | tenten |
| weight | 10000 (100.00%) |
| Transaction Info | Block #22645201/Trx 30ef4b7fa0bdf5dd0fbeabe0cd573b9df0a695ba |
View Raw JSON Data
{
"block": 22645201,
"op": [
"vote",
{
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"permlink": "ulogging-at-midnight-i-have-some-information-you-might-be-interested-in",
"voter": "tenten",
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"op_in_trx": 0,
"timestamp": "2018-05-22T05:46:15",
"trx_id": "30ef4b7fa0bdf5dd0fbeabe0cd573b9df0a695ba",
"trx_in_block": 31,
"virtual_op": 0
}tribesteemupupvoted (1.00%) @tenten / re-tribesteemup-2018520t73320730z2018/05/21 02:05:03
tribesteemupupvoted (1.00%) @tenten / re-tribesteemup-2018520t73320730z
2018/05/21 02:05:03
| author | tenten |
| permlink | re-tribesteemup-2018520t73320730z |
| voter | tribesteemup |
| weight | 100 (1.00%) |
| Transaction Info | Block #22611981/Trx 75730b775c8da18e82690c829473bb6e71a31aa1 |
View Raw JSON Data
{
"block": 22611981,
"op": [
"vote",
{
"author": "tenten",
"permlink": "re-tribesteemup-2018520t73320730z",
"voter": "tribesteemup",
"weight": 100
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],
"op_in_trx": 0,
"timestamp": "2018-05-21T02:05:03",
"trx_id": "75730b775c8da18e82690c829473bb6e71a31aa1",
"trx_in_block": 11,
"virtual_op": 0
}tentenupvoted (100.00%) @paragon99 / kind-ads-the-futurw-of-advertising-79de70204bf232018/05/21 02:02:09
tentenupvoted (100.00%) @paragon99 / kind-ads-the-futurw-of-advertising-79de70204bf23
2018/05/21 02:02:09
| author | paragon99 |
| permlink | kind-ads-the-futurw-of-advertising-79de70204bf23 |
| voter | tenten |
| weight | 10000 (100.00%) |
| Transaction Info | Block #22611923/Trx 5b23ceaa93dfb6c52f2d2da3c35c947ab49f1e7c |
View Raw JSON Data
{
"block": 22611923,
"op": [
"vote",
{
"author": "paragon99",
"permlink": "kind-ads-the-futurw-of-advertising-79de70204bf23",
"voter": "tenten",
"weight": 10000
}
],
"op_in_trx": 0,
"timestamp": "2018-05-21T02:02:09",
"trx_id": "5b23ceaa93dfb6c52f2d2da3c35c947ab49f1e7c",
"trx_in_block": 40,
"virtual_op": 0
}2018/05/20 06:33:42
2018/05/20 06:33:42
| author | paragon99 |
| permlink | re-tribesteemup-tribesteemup-newsletter-get-a-1-vote-for-sharing-what-you-re-grateful-for-a-celebration-of-the-growth-of-the-tribe-20180519t202627102z |
| voter | tenten |
| weight | 10000 (100.00%) |
| Transaction Info | Block #22588557/Trx 4958d58d69b41976f2f79cd64b072fca92c1dcbc |
View Raw JSON Data
{
"block": 22588557,
"op": [
"vote",
{
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"voter": "tenten",
"weight": 10000
}
],
"op_in_trx": 0,
"timestamp": "2018-05-20T06:33:42",
"trx_id": "4958d58d69b41976f2f79cd64b072fca92c1dcbc",
"trx_in_block": 59,
"virtual_op": 0
}Manabar
Voting Power100.00%
Downvote Power100.00%
Resource Credits100.00%
Reputation Progress58.80%
{
"voting_manabar": {
"current_mana": "8954105741",
"last_update_time": 1606874793
},
"downvote_manabar": {
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},
"rc_account": {
"account": "tenten",
"max_rc": 3940766131,
"max_rc_creation_adjustment": {
"amount": "2020748973",
"nai": "@@000000037",
"precision": 6
},
"rc_manabar": {
"current_mana": 3786354774,
"last_update_time": 1609554756
}
}
}Account Metadata
| POSTING JSON METADATA | |
| profile | {"cover_image":"https://img.esteem.ws/tg4qebkcje.jpg","profile_image":"https://img.esteem.ws/bc1uqni8lr.jpg","location":"Ibadan, Nigeria","name":"1010","about":"The beauty of binary"} |
| JSON METADATA | |
| profile | {"cover_image":"https://img.esteem.ws/tg4qebkcje.jpg","profile_image":"https://img.esteem.ws/bc1uqni8lr.jpg","location":"Ibadan, Nigeria","name":"1010","about":"The beauty of binary"} |
{
"posting_json_metadata": {
"profile": {
"cover_image": "https://img.esteem.ws/tg4qebkcje.jpg",
"profile_image": "https://img.esteem.ws/bc1uqni8lr.jpg",
"location": "Ibadan, Nigeria",
"name": "1010",
"about": "The beauty of binary"
}
},
"json_metadata": {
"profile": {
"cover_image": "https://img.esteem.ws/tg4qebkcje.jpg",
"profile_image": "https://img.esteem.ws/bc1uqni8lr.jpg",
"location": "Ibadan, Nigeria",
"name": "1010",
"about": "The beauty of binary"
}
}
}Auth Keys
Owner
Single Signature
Public Keys
STM5nw39FYLrtYc2fpBoBYSHPxwZEww7nRaG7ukFUqZVucgjycJk21/1
Active
Single Signature
Public Keys
STM7kfwp141FUe8QPjPN2trX4RfQYg8RX4gTG2MxgEnxVLNGB9wSz1/1
Posting
Single Signature
Public Keys
STM6nw98opfenXr7xRi4LzMaoicSSxxH365JexEpyT86ddH8JnrEu1/1
Memo
STM7vtT2A4Z8vzYfSVt8h1Gix7H4U3Lw1SVeJqMfLuHktHr7fp5ct
{
"owner": {
"account_auths": [],
"key_auths": [
[
"STM5nw39FYLrtYc2fpBoBYSHPxwZEww7nRaG7ukFUqZVucgjycJk2",
1
]
],
"weight_threshold": 1
},
"active": {
"account_auths": [],
"key_auths": [
[
"STM7kfwp141FUe8QPjPN2trX4RfQYg8RX4gTG2MxgEnxVLNGB9wSz",
1
]
],
"weight_threshold": 1
},
"posting": {
"account_auths": [
[
"busy.app",
1
],
[
"decentmemes.app",
1
],
[
"esteemapp",
1
]
],
"key_auths": [
[
"STM6nw98opfenXr7xRi4LzMaoicSSxxH365JexEpyT86ddH8JnrEu",
1
]
],
"weight_threshold": 1
},
"memo": "STM7vtT2A4Z8vzYfSVt8h1Gix7H4U3Lw1SVeJqMfLuHktHr7fp5ct"
}Witness Votes
7 / 30
01.aggroed |
02.busy.witness |
03.good-karma |
05.ocd-witness |
06.utopian-io |
07.yabapmatt |
[ "aggroed", "busy.witness", "good-karma", "jerrybanfield", "ocd-witness", "utopian-io", "yabapmatt" ]