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pragma circom 2.1.5; | ||
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include "circomlib/circuits/bitify.circom"; | ||
include "circomlib/circuits/comparators.circom"; | ||
include "circomlib/circuits/poseidon.circom"; | ||
include "./constants.circom"; | ||
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function compute_ints_size(bytes_size) { | ||
var pack_bytes = pack_bytes_const(); | ||
var remain = bytes_size % pack_bytes; | ||
var num_chunk = (bytes_size - remain) / pack_bytes; | ||
if(remain>0) { | ||
num_chunk += 1; | ||
} | ||
return num_chunk; | ||
} | ||
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template Bytes2Ints(bytes_size) { | ||
var num_chunk = compute_ints_size(bytes_size); | ||
signal input bytes[bytes_size]; | ||
signal output ints[num_chunk]; | ||
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var pack_bytes = pack_bytes_const(); | ||
signal ints_sums[num_chunk][pack_bytes]; | ||
for(var i=0; i<num_chunk; i++) { | ||
for(var j=0; j<pack_bytes; j++) { | ||
var idx = pack_bytes*i+j; | ||
if(idx>=bytes_size) { | ||
ints_sums[i][j] <== ints_sums[i][j-1]; | ||
} else if (j==0){ | ||
ints_sums[i][j] <== bytes[idx]; | ||
} else { | ||
ints_sums[i][j] <== ints_sums[i][j-1] + (1<<(8*j)) * bytes[idx]; | ||
} | ||
} | ||
} | ||
for(var i=0; i<num_chunk; i++) { | ||
ints[i] <== ints_sums[i][pack_bytes-1]; | ||
} | ||
} |
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pragma circom 2.1.5; | ||
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function email_max_bytes_const() { | ||
return 256; | ||
} | ||
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function domain_len_const() { | ||
return 255; | ||
} | ||
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function invitation_code_len_const() { | ||
return 64; | ||
} | ||
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function field_pack_bits_const() { | ||
return 248; | ||
} | ||
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function pack_bytes_const() { | ||
return 31; | ||
} | ||
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function timestamp_len_const() { | ||
return 10; | ||
} |
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pragma circom 2.1.5; | ||
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include "circomlib/circuits/bitify.circom"; | ||
include "circomlib/circuits/comparators.circom"; | ||
include "circomlib/circuits/poseidon.circom"; | ||
include "./constants.circom"; | ||
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// `in` is a big-endtian digit string of `out`. | ||
template Digit2Int(n) { | ||
signal input in[n]; | ||
signal output out; | ||
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component digit2int[n]; | ||
signal sums[n+1]; | ||
sums[0] <== 0; | ||
for(var i = 0; i < n; i++) { | ||
digit2int[i] = Digit2Int1(); | ||
digit2int[i].in <== in[i]; | ||
sums[i+1] <== 10 * sums[i] + digit2int[i].out; | ||
} | ||
out <== sums[n]; | ||
} | ||
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template Digit2Int1() { | ||
signal input in; | ||
signal output out; | ||
out <== in - 48; | ||
} |
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pragma circom 2.1.5; | ||
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include "circomlib/circuits/poseidon.circom"; | ||
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// email_addr_commit = hash(rand, emailAddr||0..0) | ||
template EmailAddrCommit(num_ints) { | ||
signal input rand; | ||
signal input email_addr_ints[num_ints]; | ||
signal output commit; | ||
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component poseidon = Poseidon(1+num_ints); | ||
poseidon.inputs[0] <== rand; | ||
for(var i=0; i<num_ints; i++) { | ||
poseidon.inputs[1+i] <== email_addr_ints[i]; | ||
} | ||
commit <== poseidon.out; | ||
} |
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pragma circom 2.1.5; | ||
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include "circomlib/circuits/poseidon.circom"; | ||
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template EmailNullifier() { | ||
// signal input header_hash[256]; | ||
signal input sign_hash; | ||
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signal output email_nullifier; | ||
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// var field_pack_bits = field_pack_bits_const(); | ||
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// signal header_hash_int[field_pack_bits+1]; | ||
// header_hash_int[0] <== 0; | ||
// for(var i = 0; i < field_pack_bits; i++) { | ||
// header_hash_int[i+1] <== 2 * header_hash_int[i] + header_hash[i]; | ||
// } | ||
// signal email_nullifier_input[1]; | ||
// email_nullifier_input[0] <== sign_hash; | ||
email_nullifier <== Poseidon(1)([sign_hash]); | ||
} | ||
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pragma circom 2.1.5; | ||
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include "circomlib/circuits/poseidon.circom"; | ||
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template HashSign(n,k) { | ||
// signal input pubkey[k]; | ||
signal input signature[k]; | ||
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// signal output pubkey_hash; | ||
signal output sign_hash; | ||
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var k2_chunked_size = k >> 1; | ||
if(k % 2 == 1) { | ||
k2_chunked_size += 1; | ||
} | ||
signal output sign_ints[k2_chunked_size]; | ||
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// signal pubkey_hash_input[k2_chunked_size]; | ||
// for(var i = 0; i < k2_chunked_size; i++) { | ||
// if(i==k2_chunked_size-1 && k2_chunked_size % 2 == 1) { | ||
// pubkey_hash_input[i] <== pubkey[2*i]; | ||
// } else { | ||
// pubkey_hash_input[i] <== pubkey[2*i] + (1<<n) * pubkey[2*i+1]; | ||
// } | ||
// } | ||
// pubkey_hash <== Poseidon(k2_chunked_size)(pubkey_hash_input); | ||
for(var i = 0; i < k2_chunked_size; i++) { | ||
if(i==k2_chunked_size-1 && k2_chunked_size % 2 == 1) { | ||
sign_ints[i] <== signature[2*i]; | ||
} else { | ||
sign_ints[i] <== signature[2*i] + (1<<n) * signature[2*i+1]; | ||
} | ||
} | ||
sign_hash <== Poseidon(k2_chunked_size)(sign_ints); | ||
} | ||
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pragma circom 2.1.5; | ||
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include "circomlib/circuits/bitify.circom"; | ||
include "circomlib/circuits/comparators.circom"; | ||
include "circomlib/circuits/poseidon.circom"; | ||
include "./constants.circom"; | ||
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// `in` is a big-endtian hex string of `out`. | ||
template Hex2Field() { | ||
signal input in[64]; | ||
signal output out; | ||
signal bytes[32] <== Hex2Ints(64)(in); | ||
signal sums[33]; | ||
sums[0] <== 0; | ||
for(var i = 0; i < 32; i++) { | ||
sums[i+1] <== 256 * sums[i] + bytes[i]; | ||
} | ||
out <== sums[32]; | ||
} | ||
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template Hex2Ints(n) { | ||
assert(n % 2 == 0); | ||
var bytes = n / 2; | ||
signal input in[n]; | ||
signal output out[bytes]; | ||
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component hex2int[n]; | ||
for(var i = 0; i < bytes; i++) { | ||
for(var j = 0; j < 2; j++) { | ||
hex2int[2*i+j] = Hex2Int1(); | ||
hex2int[2*i+j].in <== in[2*i+j]; | ||
} | ||
out[i] <== 16 * hex2int[2*i].out + hex2int[2*i+1].out; | ||
} | ||
} | ||
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template Hex2Int1() { | ||
signal input in; | ||
signal output out; | ||
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// the given char is [0-9]. | ||
signal is_digit_min_in[2]; | ||
is_digit_min_in[0] <== in; | ||
is_digit_min_in[1] <== 48; | ||
signal is_digit_min <== GreaterEqThan(8)(is_digit_min_in); | ||
signal is_digit_max_in[2]; | ||
is_digit_max_in[0] <== in; | ||
is_digit_max_in[1] <== 57; | ||
signal is_digit_max <== LessEqThan(8)(is_digit_max_in); | ||
signal is_digit <== is_digit_min * is_digit_max; | ||
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// the given char is [a-f]. | ||
signal is_alphabet_min_in[2]; | ||
is_alphabet_min_in[0] <== in; | ||
is_alphabet_min_in[1] <== 97; | ||
signal is_alphabet_min <== GreaterEqThan(8)(is_alphabet_min_in); | ||
signal is_alphabet_max_in[2]; | ||
is_alphabet_max_in[0] <== in; | ||
is_alphabet_max_in[1] <== 102; | ||
signal is_alphabet_max <== LessEqThan(8)(is_alphabet_max_in); | ||
signal is_alphabet <== is_alphabet_min * is_alphabet_max; | ||
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is_digit + is_alphabet === 1; | ||
signal digit_int <== is_digit * (in - 48); | ||
// 87 = 97 - 10 | ||
signal alphabet_int <== is_alphabet * (in - 87); | ||
out <== digit_int + alphabet_int; | ||
} |