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BitConeView: Visualization of Flows
in the Bitcoin Transaction Graph
G. Di Battista1 · V. Di Donato1 · M. Patrignani1
M. Pizzonia1 · V. Roselli1 · R. Tamassia2
1 DEPARTMENT OF ENGINEERING
ROMA TRE UNIVERSITY
2 DEPARTMENT OF COMPUTER SCIENCE
BROWN UNIVERSITY
Work partially supported by
Italian National Project
Algorithms for Massive
and Networked Data
Vu Pham
Valentino Di Donato
Background on Bitcoin
Bitcoin anonymity
BitConeView: Requirements
BitConeView: key concepts and metaphors
Experiments
Conclusions
Outline
Vu Pham
Valentino Di Donato
Background
Data Driven Innovation 201605/21/2016
Peer-to-peer
transactions
2008 S. Nakamoto. Bitcoin: A peer-to-peer electronic cash
system. Whitepaper on a popular cryptography mailing list
2009 released the first bitcoin software that launched the
network and the first units of the bitcoin cryptocurrency
Worldwide
payments
Low
processing fees
No need
for third parties
Vu Pham
Valentino Di Donato
The numbers
Avg # ~every 10 min
Market price (USD)
Total # Txs (M)
Blockchain size (GB)
Data Driven Innovation 201605/21/2016
Vu Pham
Valentino Di Donato
Background
Transactions (tx)
Blockchain
Bitcoins are trasferred by means of Transactions (Txs)
All transactions are recorded in a public ledger called Blockchain
n n + 1 n + 2Block height
Data Driven Innovation 201605/21/2016
Vu Pham
Valentino Di Donato
Background
Transaction
Inputs
Outputs
𝑖1 𝑖2 𝑖3 𝑖4
𝑜1 𝑜2 𝑜3
Inputs
ADDRESS AMOUNT
𝑖1
1AspUk7FPS2k6dW4JEBTSyESdyfnChvrce 4 BTC
𝑖2
5FypDr7RP42k6dWFJEdTtrESSWfnPOha1cr 2 BTC
𝑖3
13K3pHeqzmzEVUVsYiFVG1tQsrwbSQoatx 3 BTC
𝑖4
1KoeyaqRfVcNUZD22kAahcma4GXNRbT7c 2 BTC
Outputs
ADDRESS AMOUNT
𝑜1
1KoeyaqRfVcNUZD22kAahcma4GXNRbT7c 1 BTC
𝑜2
1Kis3otnx9bYEHj55iRBWW5ZsvvEdJraEk 6 BTC
𝑜3
1KoeyaqRfVcNUZD22kAahcma4GXNRbT7c 4 BTC
Data Driven Innovation 201605/21/2016
Vu Pham
Valentino Di Donato
Once a tx has been processed,
the only way to spend its outputs
is to use them as inputs for other txs
n.b. some outputs may be
unspent (UTXOs)
Txs define a directed
acyclic multi-graph
Background
𝑜2
𝑖1 𝑖2
𝑜1
1
2
Data Driven Innovation 201605/21/2016
Vu Pham
Valentino Di Donato
Identity behind Bitcoin addresses is revealed
during a purchase for delivery purposes
when buying USD at exchanges
Third parties may be able to
track your future transactions
trace your previous activity
Bitcoin anonymity
Bitcoin is not always anonymous
Data Driven Innovation 201605/21/2016
Vu Pham
Valentino Di Donato
Mixing services to improve anonymity
BitLaundry
Bitcoin Fog
Bitcoin Mixer
Bitcomix
BitSafe
…
Mixing and Laundering
Thousands of
Transactions
Side effect
Mixing services facilitate money laundering
Data Driven Innovation 201605/21/2016
Vu Pham
Valentino Di Donato
Starting from one (or more) transaction(s)
Follow Bitcoins over time
Reveal flow patterns of interest
• Accumulation, distribution, mixing
Understand when Bitcoins are mixed up
• Understand the degree of mixing of Bitcoins over time
Evaluate effectiveness of mixing websites
BitConeView: Requirements
Data Driven Innovation 201605/21/2016
Vu Pham
Valentino Di Donato
Graph Server
BitConeView
P2P Network
BitConeView: System Architecture and prototype
VizSec 201510/26/2015
Bitcoin
full node
API Level DB
Server
…
Client
DEMO available at:
http://www.bitconeview.info
Vu Pham
Valentino Di Donato
The BitCone or cone of a transaction S is the subgraph
reachable from S within a given time limit T
Intruders are (grey) inputs coming
from outside the cone and are
responsible for the mixing
UTXOs may be unspent
at time T (grey)
at present time (black)
Other (white)
outputs are spent
BitConeView: Some key concepts
VizSec 201510/26/2015
S
T
Vu Pham
Valentino Di Donato
One starting tx S through its 64 digits hash
An ending date (time limit T)
BitConeView: inputs
Data Driven Innovation 201605/21/2016
Vu Pham
Valentino Di Donato
BitConeView
B1
S
B2
B2
B4
B6
B6
T
The system will start computing cone(S, T):
But it will not draw it as is
Data Driven Innovation 201605/21/2016
Vu Pham
Valentino Di Donato
Inputs of starting tx, and UTXO
BitConeView
B1
S
Block height
BTCs
Purity
0.2
1
T
0.08
BTCs entering the cone until B1
BTCs unspent until B1
0
0
B1
B2
Data Driven Innovation 201605/21/2016
Vu Pham
Valentino Di Donato
Intruders and UTXOs (unspent up to T or never-spent)
BitConeView
B1
S
0.7
B1
BTCs
Purity
B2
0.5
B2
B2
BTCs entering the cone until B2
BTCs unspent until B2
0.7 1
10 m
T
0
0
Block height
Data Driven Innovation 201605/21/2016
Vu Pham
Valentino Di Donato
Another intruder and another UTXO (unspent up to T)
BitConeView
B1
S
0.9
BTCs
Purity
0.7
B2
B2
BTCs entering the cone until B4
BTCs unspent until B4
B4
B4
1
10 m
20 m
0.6
T
0
0
B1
B2
Block height
Data Driven Innovation 201605/21/2016
Vu Pham
Valentino Di Donato
No intruders, more unspent outputs
BitConeView
B1
S
0.9
BTCs
Purity1
0.7
B2
B2
BTCs entering the cone until B6
BTCs unspent until B6
B4
B6
B6
10 m
20 m
20 m
0.6
T
0
0
Block
height
B4
B1
B2
B6
Data Driven Innovation 201605/21/2016
Vu Pham
Valentino Di Donato
BitConeView
[USAGE VIDEO]
Data Driven Innovation 201605/21/2016
Vu Pham
Valentino Di Donato
Experiments with BitLaundry
Starting txs from [Moser et al. 2013]
(a) the injected Bitcoins are mixed after ~10 h
(b) BitLaundry is less effective
(a) (b)
Data Driven Innovation 201605/21/2016
Vu Pham
Valentino Di Donato
Experiments with Bitcoin Fog
[Moser et al. 2013]
BTCs used as payout by
mixing services often come
from txs that are part of
long chains in which each
tx distributes small
amounts of BTCs
At the apex of the chains is
common to find very large
txs that bundle Bitcoins
40,000 BTCs > 10M USD!
Data Driven Innovation 201605/21/2016
Vu Pham
Valentino Di Donato
Accumulation pattern
~150 inputs in txs falling in the same block
1 final transaction bundling 1000 Bitcoins
Twice!
Data Driven Innovation 201605/21/2016
Vu Pham
Valentino Di Donato
Conclusions
We presented a system for the visual analysis
of flows in the Blockchain
We introduced the concept of purity of Bitcoins
We analyzed many real money laundering
processes
Conclusions
Data Driven Innovation 201605/21/2016
Vu Pham
Valentino Di Donato
Want to know more about Blockchain/Bitcoin?
Blockchain Education Network Italia
Dedicated to students
• Facebook: https://www.facebook.com/BlockchainEduIT
• Twitter: https://twitter.com/BlockchainEduIT
• Sito Web: http://blockchainedu.net/
• Email: info@blockchainedu.net
• Talk to: Emiliano Palermo
Blockchain Education Network Italia
Data Driven Innovation 201605/21/2016
Questions?

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BitConeView: Visualization of Flows in the Bitcoin Transaction Graph

  • 1. BitConeView: Visualization of Flows in the Bitcoin Transaction Graph G. Di Battista1 · V. Di Donato1 · M. Patrignani1 M. Pizzonia1 · V. Roselli1 · R. Tamassia2 1 DEPARTMENT OF ENGINEERING ROMA TRE UNIVERSITY 2 DEPARTMENT OF COMPUTER SCIENCE BROWN UNIVERSITY Work partially supported by Italian National Project Algorithms for Massive and Networked Data
  • 2. Vu Pham Valentino Di Donato Background on Bitcoin Bitcoin anonymity BitConeView: Requirements BitConeView: key concepts and metaphors Experiments Conclusions Outline
  • 3. Vu Pham Valentino Di Donato Background Data Driven Innovation 201605/21/2016 Peer-to-peer transactions 2008 S. Nakamoto. Bitcoin: A peer-to-peer electronic cash system. Whitepaper on a popular cryptography mailing list 2009 released the first bitcoin software that launched the network and the first units of the bitcoin cryptocurrency Worldwide payments Low processing fees No need for third parties
  • 4. Vu Pham Valentino Di Donato The numbers Avg # ~every 10 min Market price (USD) Total # Txs (M) Blockchain size (GB) Data Driven Innovation 201605/21/2016
  • 5. Vu Pham Valentino Di Donato Background Transactions (tx) Blockchain Bitcoins are trasferred by means of Transactions (Txs) All transactions are recorded in a public ledger called Blockchain n n + 1 n + 2Block height Data Driven Innovation 201605/21/2016
  • 6. Vu Pham Valentino Di Donato Background Transaction Inputs Outputs 𝑖1 𝑖2 𝑖3 𝑖4 𝑜1 𝑜2 𝑜3 Inputs ADDRESS AMOUNT 𝑖1 1AspUk7FPS2k6dW4JEBTSyESdyfnChvrce 4 BTC 𝑖2 5FypDr7RP42k6dWFJEdTtrESSWfnPOha1cr 2 BTC 𝑖3 13K3pHeqzmzEVUVsYiFVG1tQsrwbSQoatx 3 BTC 𝑖4 1KoeyaqRfVcNUZD22kAahcma4GXNRbT7c 2 BTC Outputs ADDRESS AMOUNT 𝑜1 1KoeyaqRfVcNUZD22kAahcma4GXNRbT7c 1 BTC 𝑜2 1Kis3otnx9bYEHj55iRBWW5ZsvvEdJraEk 6 BTC 𝑜3 1KoeyaqRfVcNUZD22kAahcma4GXNRbT7c 4 BTC Data Driven Innovation 201605/21/2016
  • 7. Vu Pham Valentino Di Donato Once a tx has been processed, the only way to spend its outputs is to use them as inputs for other txs n.b. some outputs may be unspent (UTXOs) Txs define a directed acyclic multi-graph Background 𝑜2 𝑖1 𝑖2 𝑜1 1 2 Data Driven Innovation 201605/21/2016
  • 8. Vu Pham Valentino Di Donato Identity behind Bitcoin addresses is revealed during a purchase for delivery purposes when buying USD at exchanges Third parties may be able to track your future transactions trace your previous activity Bitcoin anonymity Bitcoin is not always anonymous Data Driven Innovation 201605/21/2016
  • 9. Vu Pham Valentino Di Donato Mixing services to improve anonymity BitLaundry Bitcoin Fog Bitcoin Mixer Bitcomix BitSafe … Mixing and Laundering Thousands of Transactions Side effect Mixing services facilitate money laundering Data Driven Innovation 201605/21/2016
  • 10. Vu Pham Valentino Di Donato Starting from one (or more) transaction(s) Follow Bitcoins over time Reveal flow patterns of interest • Accumulation, distribution, mixing Understand when Bitcoins are mixed up • Understand the degree of mixing of Bitcoins over time Evaluate effectiveness of mixing websites BitConeView: Requirements Data Driven Innovation 201605/21/2016
  • 11. Vu Pham Valentino Di Donato Graph Server BitConeView P2P Network BitConeView: System Architecture and prototype VizSec 201510/26/2015 Bitcoin full node API Level DB Server … Client DEMO available at: http://www.bitconeview.info
  • 12. Vu Pham Valentino Di Donato The BitCone or cone of a transaction S is the subgraph reachable from S within a given time limit T Intruders are (grey) inputs coming from outside the cone and are responsible for the mixing UTXOs may be unspent at time T (grey) at present time (black) Other (white) outputs are spent BitConeView: Some key concepts VizSec 201510/26/2015 S T
  • 13. Vu Pham Valentino Di Donato One starting tx S through its 64 digits hash An ending date (time limit T) BitConeView: inputs Data Driven Innovation 201605/21/2016
  • 14. Vu Pham Valentino Di Donato BitConeView B1 S B2 B2 B4 B6 B6 T The system will start computing cone(S, T): But it will not draw it as is Data Driven Innovation 201605/21/2016
  • 15. Vu Pham Valentino Di Donato Inputs of starting tx, and UTXO BitConeView B1 S Block height BTCs Purity 0.2 1 T 0.08 BTCs entering the cone until B1 BTCs unspent until B1 0 0 B1 B2 Data Driven Innovation 201605/21/2016
  • 16. Vu Pham Valentino Di Donato Intruders and UTXOs (unspent up to T or never-spent) BitConeView B1 S 0.7 B1 BTCs Purity B2 0.5 B2 B2 BTCs entering the cone until B2 BTCs unspent until B2 0.7 1 10 m T 0 0 Block height Data Driven Innovation 201605/21/2016
  • 17. Vu Pham Valentino Di Donato Another intruder and another UTXO (unspent up to T) BitConeView B1 S 0.9 BTCs Purity 0.7 B2 B2 BTCs entering the cone until B4 BTCs unspent until B4 B4 B4 1 10 m 20 m 0.6 T 0 0 B1 B2 Block height Data Driven Innovation 201605/21/2016
  • 18. Vu Pham Valentino Di Donato No intruders, more unspent outputs BitConeView B1 S 0.9 BTCs Purity1 0.7 B2 B2 BTCs entering the cone until B6 BTCs unspent until B6 B4 B6 B6 10 m 20 m 20 m 0.6 T 0 0 Block height B4 B1 B2 B6 Data Driven Innovation 201605/21/2016
  • 19. Vu Pham Valentino Di Donato BitConeView [USAGE VIDEO] Data Driven Innovation 201605/21/2016
  • 20. Vu Pham Valentino Di Donato Experiments with BitLaundry Starting txs from [Moser et al. 2013] (a) the injected Bitcoins are mixed after ~10 h (b) BitLaundry is less effective (a) (b) Data Driven Innovation 201605/21/2016
  • 21. Vu Pham Valentino Di Donato Experiments with Bitcoin Fog [Moser et al. 2013] BTCs used as payout by mixing services often come from txs that are part of long chains in which each tx distributes small amounts of BTCs At the apex of the chains is common to find very large txs that bundle Bitcoins 40,000 BTCs > 10M USD! Data Driven Innovation 201605/21/2016
  • 22. Vu Pham Valentino Di Donato Accumulation pattern ~150 inputs in txs falling in the same block 1 final transaction bundling 1000 Bitcoins Twice! Data Driven Innovation 201605/21/2016
  • 23. Vu Pham Valentino Di Donato Conclusions We presented a system for the visual analysis of flows in the Blockchain We introduced the concept of purity of Bitcoins We analyzed many real money laundering processes Conclusions Data Driven Innovation 201605/21/2016
  • 24. Vu Pham Valentino Di Donato Want to know more about Blockchain/Bitcoin? Blockchain Education Network Italia Dedicated to students • Facebook: https://www.facebook.com/BlockchainEduIT • Twitter: https://twitter.com/BlockchainEduIT • Sito Web: http://blockchainedu.net/ • Email: info@blockchainedu.net • Talk to: Emiliano Palermo Blockchain Education Network Italia Data Driven Innovation 201605/21/2016