274 lines
12 KiB
TeX
274 lines
12 KiB
TeX
\documentclass{article}
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\usepackage[a4paper, margin=2cm]{geometry}
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\usepackage{amsmath}
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\usepackage{amsfonts}
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\begin{document}
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\section{Ed25519 Elliptic Curve Based Algorithms And Protocols}
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\subsection{Zero Knowledge Proofs}
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\subsubsection{Proof 1: Knowledge of an ECDL}
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Alice and Bob know $V$, $G$ and $q = |G|$, but only Alice knows $x$, so that
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$V = xG$.
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\begin{enumerate}
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\item Alice chooses $z \bmod q$ at random and calculates $A = zG$.
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\item Alice computes $c = HASH(G,V,A) \bmod q$.
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\item Alice sends $G, V, A$ and $r = (z + cx) \bmod q$ to Bob.
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\item Bob computes $c$ as above and checks that $rG = A + cV$.
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\end{enumerate}
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\begin{tabular}{r l}
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Prover only knowledge: & $x$ \\
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Common knowledge: & $V, G$ \\
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Proof: & $r, A$
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\end{tabular}
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\subsubsection{Proof 2: Equality of two ECDL}
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Alice and Bob know $V$, $W$, $G_1$ and $G_2$, but only Alice knows $x$, so that
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$V = xG_1$ and $W = xG_2$.
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\begin{enumerate}
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\item Alice chooses $z \bmod q$ at random and calculates $A = zG_1$ and $B = zG_2$.
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\item Alice computes $c = HASH(G_1,G_2,V,W,A,B) \bmod q$.
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\item Alice sends $V, W, G_1, G_2, A, B$ and $r = (z + cx) \bmod q$ to Bob.
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\item Bob computes $c$ as above and checks that $rG_1 = A + cV$ and $rG_2 = B + cW$.
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\end{enumerate}
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\begin{tabular}{r l}
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Prover only knowledge: & $x$ \\
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Common knowledge: & $V, W, G_1, G_2$ \\
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Proof: & $r, A, B$
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\end{tabular}
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\subsubsection{Proof 3: An encrypted value is one out of two values}
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Alice proves that an El Gamal encrypted value $(\alpha, \beta) = (M + rY, rG)$
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either decrypts to $0$ or to the fixed value $G$ without revealing which is the
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case, in other words, it is shown that $M \in \{0, G\}$. \\
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\noindent If $M = 0$:
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\begin{enumerate}
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\item Alice chooses $r_1, d_1, w \bmod q$ at random and calculates $A_1 = r_1G + d_1\beta$, $B_1 = r_1Y + d_1(\alpha - G)$, $A_2=wG$ and $B_2=wY$.
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\item Alice computes $c = HASH(G,\alpha,\beta,A_1,B_1,A_2,B_2) \bmod q$.
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\item Alice chooses $d_2=c-d_1 \bmod q$ and $r_2=w-rd_2 \bmod q$.
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\end{enumerate}
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\noindent If $M = G$:
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\begin{enumerate}
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\item Alice chooses $r_2, d_2, w \bmod q$ at random and calculates $A_1=wG$, $B_1=wY$, $A_2=r_2G + d_2\beta$ and $B_2=r_2Y + d_2\alpha$.
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\item Alice computes $c = HASH(G,\alpha,\beta,A_1,B_1,A_2,B_2) \bmod q$.
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\item Alice chooses $d_1=c-d_2 \bmod q$ and $r_1=w-rd_1 \bmod q$.
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\end{enumerate}
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\noindent Then regardless of the value of $M$:
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\begin{enumerate}
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\item Alice sends $G, (\alpha, \beta), A_1, B_1, A_2, B_2, d_1, d_2, r_1, r_2$ to Bob.
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\item Bob computes $c$ as above and checks that $c=d_1+d_2 \bmod q$, $A_1=r_1G+d_1\beta$, $B_1=r_1Y+d_1(\alpha-G)$, $A_2=r_2G+d_2\beta$ and $B_2=r_2Y+d_2\alpha$.
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\end{enumerate}
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\begin{tabular}{r l}
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Prover only knowledge: & $r, x$ \\
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Common knowledge: & $\alpha, \beta$ \\
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Proof: & $A_1, A_2, B_1, B_2, d_1, d_2, r_1, r_2$
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\end{tabular}
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\subsection{public outcome auctions}
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TODO: no need to unicast Round 3 to seller, implications
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\subsection{M+1st price auctions}
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TODO: explain blowing up $k$ to $nk$ to prevent ties and the additional check
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needed in Round 1.
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\subsection{Prologue}
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These steps are the same for all following protocols in this section.
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Let $n$ be the number of participating bidders/agents in the protocol and $k$ be
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the amount of possible valuations/prices for the sold good. Let $G$ be the
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base point of Ed25519 and $q = ord(G)$ the order of it. $0$ is the neutral point
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for addition on Ed25519. $a \in \left\{1,2,\dots,n\right\}$ is the index of the
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agent executing the protocol, while $i, h \in \left\{1, 2, \dots, n\right\}$ are
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other agent indizes. $j, b_a \in \left\{1,2,\dots,k\right\}$ with $b_a$ denoting
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the price $p_{b_a}$ bidder $a$ is willing to pay. $\forall j: p_j < p_{j+1}$.
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\subsubsection{Generate public key}
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\begin{enumerate}
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\item Choose the private key share $x_{+a} \in \mathbb{Z}_q$ and \\
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$\forall i,j:$ Blinding factors $m_{ij}^{+a} \bmod q$ and \\
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$\forall j:$ El Gamal encryption parameters $r_{aj} \bmod q$ at random.
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\item Publish $Y_{\times a}={x_{+a}}G$ along with Proof 1 of $Y_{\times a}$'s ECDL.
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\item Compute $Y=\sum_{i=1}^nY_{\times i}$.
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\end{enumerate}
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\subsubsection{Round 1: Encrypt bid}
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The message has $k$ parts, each consisting of $10$ Points plus an additional $3$
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Points for the last proof. Therefore the message is $10k*32 + 3*32 = 320k + 96$
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bytes large.
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\begin{enumerate}
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\item $\forall j:$ Set $B_{aj}=\begin{cases}G & \mathrm{if}\quad j=b_a\\0 & \mathrm{else}\end{cases}$ and publish $\alpha_{aj}=B_{aj}+r_{aj}Y$ and $\beta_{aj}=r_{aj}G$.
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\item $\forall j:$ Use Proof 3 to show that $(\alpha_{aj}, \beta_{aj})$ decrypts to either $0$ or $G$.
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\item Use Proof 2 to show that $ ECDL_Y\left(\left(\sum_{j=1}^k\alpha_{aj}\right) - G\right) = ECDL_G\left(\sum_{j=1}^k\beta_{aj}\right)$.
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\end{enumerate}
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\subsection{First Price Auction Protocol With Private Outcome}
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\subsubsection{Round 2: Compute outcome}
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The message has $nk$ parts, each consisting of $5$ Points. Therefore the message
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is $5nk*32 = 160nk$ bytes large.
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$\forall i,j:$ Compute and publish \\[2.0ex]
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$\gamma_{ij}^{\times a} = m_{ij}^{+a}\displaystyle\left(\left(\sum_{h=1}^n\sum_{d=j+1}^k\alpha_{hd}\right)+\left(\sum_{d=1}^{j-1}\alpha_{id}\right)+\left(\sum_{h=1}^{i-1}\alpha_{hj}\right)\right)$ and \\[2.0ex]
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$\delta_{ij}^{\times a} = m_{ij}^{+a}\displaystyle\left(\left(\sum_{h=1}^n\sum_{d=j+1}^k \beta_{hd}\right)+\left(\sum_{d=1}^{j-1} \beta_{id}\right)+\left(\sum_{h=1}^{i-1} \beta_{hj}\right)\right)$ \\[2.0ex]
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with a corresponding Proof 2 for $ECDL(\gamma_{ij}^{\times a}) = ECDL(\delta_{ij}^{\times a})$.
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\subsubsection{Round 3: Decrypt outcome}
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$\forall i,j:$ Send $\varphi_{ij}^{\times a} =
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x_{+a}\left(\sum_{h=1}^n\delta_{ij}^{\times h}\right)$ with a Proof 2 showing
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$ECDL(\varphi_{ij}^{\times a}) = ECDL(Y_{\times a})$ to the seller who publishes
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all $\varphi_{ij}^{\times h}$ and the corresponding proofs of correctness for
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each $i, j$ and $h \neq i$ after having received all of them.
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\subsubsection{Epilogue: Outcome determination}
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\begin{enumerate}
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\item $\forall j:$ Compute $V_{aj}=\sum_{i=1}^n\gamma_{aj}^{\times i} - \sum_{i=1}^n\varphi_{aj}^{\times i}$.
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\item If $\exists w: V_{aw} = 0$, then bidder $a$ is the winner of the auction. $p_w$ is the selling price.
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\end{enumerate}
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\subsection{First Price Auction Protocol With Public Outcome}
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\subsubsection{Round 2: Compute outcome}
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$\forall j:$ Compute and publish \\[2.0ex]
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$\gamma_j^{\times a} = m_j^{+a}\displaystyle\left(\sum_{h=1}^n\sum_{d=j+1}^k\alpha_{hd}\right)+\sum_{h=1}^n2^{h-1}\alpha_{hj}$ and \\[2.0ex]
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$\delta_j^{\times a} = m_j^{+a}\displaystyle\left(\sum_{h=1}^n\sum_{d=j+1}^k \beta_{hd}\right)+\sum_{h=1}^n2^{h-1} \beta_{hj}$ \\[2.0ex]
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with a corresponding Proof 2 for $\displaystyle ECDL\left(m_j^{+a}\left(\sum_{h=1}^n\sum_{d=j+1}^k\alpha_{hd}\right)\right) = ECDL\left(m_j^{+a}\left(\sum_{h=1}^n\sum_{d=j+1}^k \beta_{hd}\right)\right)$. \\[2.0ex]
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The message has $k$ parts, each consisting of $5$ Points. Therefore the message
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is $5k*32 = 160k$ bytes large. Note that compared to auctions with private
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outcome the message size is reduced by a factor of $n$ because we don't need to
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compute different outcome functions for each bidder when the outcome should be
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public. Therefore we don't need $nk$ blinding factors $m_{ij}^{+a}$ in this
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scheme, but only $k$ different ones $m_j^{+a}$.
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\subsubsection{Round 3: Decrypt outcome}
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$\forall j:$ Compute and publish $\displaystyle\varphi_j^{\times a} =
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x_{+a}\left(\sum_{h=1}^n\delta_j^{\times h}\right)$ with a Proof 2 showing
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$ECDL(\varphi_j^{\times a}) = ECDL(Y_{\times a})$ \\[2.0ex]
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This message has $k$ parts, each consisting of $4$ Points. Therefore the message
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is $4k*32 = 128k$ bytes large.
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\subsubsection{Epilogue: Outcome determination}
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\begin{enumerate}
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\item $\forall j:$ Compute $\displaystyle V_j=\sum_{h=1}^n\gamma_j^{\times h} - \sum_{h=1}^n\varphi_j^{\times h}$.
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\item The $V_j$ with the biggest index $p$ where $V_p \neq 0$ denotes that $p$ is the selling price.
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\item We then compute $d=ECDL(V_p)/n$ which is doable since it only has small factors.
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\item The lowest $w$ where the bit $w$ is set in $d$ denotes the winner.
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\end{enumerate}
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\subsection{M+1st Price Auction Protocol With Private Outcome}
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The tie breaking for M+1st Price Auctions is not only computationally intensive,
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but also introduces a lot of protocol complexity if done in an optimized
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way\footnote{TODO: quote diploma thesis}. Since this would lead to a huge amount
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of additional code which will likely introduce more bugs\footnote{TODO: quote},
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we decided to keep it simple and take another approach for tie breaking in the
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M+1st Price Auction schemes. We took the simplest one, interlacing the bids, so
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that no two bidders are allowed to bid the same price. On the application level
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we will still handle $k_{\text{app}}$ different prices, but within libbrandt we
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will multiply that by a factor of $n$ to get $k_{\text{lib}}=nk_{\text{app}}$.
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Then each bidder $i$ is only allowed to place his bid $b$ on prices $p$ with
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$\exists a\in{[1,k_{\text{app}}]}:b=an-i+1$. This condition will be checked by
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an additional proof in the first round of the protocol and ensures that the
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bidders with a lower index win in case of ties. This expansion will be done
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right at the beginning of an auction by libbrandt. In the remaining part about
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the M+1st Price Auction Protocols we will use $k$ instead of $k_{\text{lib}}$,
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so $k$ will be divisible by $n$ without remainder.
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Unfortunately this tie breaking simplification has the downside of revealing the
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identity and bid of the bidder who had the highest bid amongst the losing
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bidders. If there are multiple ones fulfilling this criteria (having a tie on
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the M+1st bid), then only the one with the lowest index will be revealed. This
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problem can be prevented by using anonymized bidder identities, so the winners
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only learn the selling prize (the M+1st highest bid), but not who placed this
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M+1st highest bid.
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\subsubsection{Addition to Round 1: Encrypt bid}
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The Bidders also have to use Proof 2 to show that $\displaystyle ECDL_Y\left(\left(\sum_{j=1}^{k/n}\alpha_{a,jn+a}\right) - G\right) = ECDL_G\left(\sum_{j=1}^{k/n}\beta_{a,jn+a}\right)$. \\[2.0ex]
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This is to ensure bidders have only chosen valid bids for their bid index, since
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in M+1st price auctions the amount of possible prices is multiplied by $n$ to
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prevent ties. This increases the message size by $96$ bytes.
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\subsubsection{Round 2: Compute outcome}
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The message has $nk$ parts, each consisting of $5$ Points. Therefore the message
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is $5nk*32 = 160nk$ bytes large.
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$\forall i,j:$ Compute and publish \\[2.0ex]
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$\gamma_{ij}^{\times a} = m_{ij}^{+a}\displaystyle\left(\sum_{h=1}^n\left(\sum_{d=j}^k\alpha_{hd}+\sum_{d=j+1}^k\alpha_{hd}\right)+\left(2M+2\right)\sum_{d=1}^{j}\alpha_{id} - \left(2M+1\right)Y \right)$ and \\[2.0ex]
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$\delta_{ij}^{\times a} = m_{ij}^{+a}\displaystyle\left(\sum_{h=1}^n\left(\sum_{d=j}^k \beta_{hd}+\sum_{d=j+1}^k \beta_{hd}\right)+\left(2M+2\right)\sum_{d=1}^{j} \beta_{id}\right)$ \\[2.0ex]
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with a corresponding Proof 2 for $ECDL(\gamma_{ij}^{\times a}) = ECDL(\delta_{ij}^{\times a})$.
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\subsubsection{Round 3: Decrypt outcome}
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$\forall i,j:$ Send $\varphi_{ij}^{\times a} =
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x_{+a}\left(\sum_{h=1}^n\delta_{ij}^{\times h}\right)$ with a Proof 2 showing
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$ECDL(\varphi_{ij}^{\times a}) = ECDL(Y_{\times a})$ to the seller who publishes
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all $\varphi_{ij}^{\times h}$ and the corresponding proofs of correctness for
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each $i, j$ and $h \neq i$ after having received all of them.
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\subsubsection{Epilogue: Outcome determination}
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\begin{enumerate}
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\item $\forall j:$ Compute $V_{aj}=\sum_{i=1}^n\gamma_{aj}^{\times i} - \sum_{i=1}^n\varphi_{aj}^{\times i}$.
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\item If $\exists w: V_{aw} = 0$, then bidder $a$ is the winner of the auction. $p_w$ is the selling price.
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\end{enumerate}
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\subsection{fixes to step 5 in (M+1)st Price auction from the 2003 paper pages 9 an 10}
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\begin{align}
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\gamma_{ij} = & \frac{\prod_{h=1}^n \prod_{d=j}^k (\alpha_{hd}\alpha_{h,d+1})\left(\prod_{d=1}^j \alpha_{id}\right)^{2M+2}}{(2M+1)Y} \\
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\text{changed to} & \frac{\prod_{h=1}^n \left(\prod_{d=j}^k \alpha_{hd} \cdot \prod_{d=j+1}^k \alpha_{hd}\right)\left(\prod_{d=1}^j \alpha_{id}\right)^{2M+2}}{Y^{2M+1}} \\[2.0ex]
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\delta_{ij} = & \prod_{h=1}^n \prod_{d=j}^k (\beta_{hd}\beta_{h,d+1})\left(\prod_{d=1}^j \beta_{id}\right)^{2M+2} \\
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\text{changed to} & \prod_{h=1}^n \left(\prod_{d=j}^k \beta_{hd} \prod_{d=j+1}^k \beta_{hd}\right)\left(\prod_{d=1}^j \beta_{id}\right)^{2M+2}
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\end{align}
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\end{document}
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