279 lines
9.5 KiB
Rust

use plonky2::hash::hash_types::{HashOut, RichField};
use plonky2_field::extension::Extendable;
use plonky2_poseidon2::poseidon2_hash::poseidon2::Poseidon2;
use serde::{Deserialize, Serialize};
use anyhow::{anyhow, Error};
use codex_plonky2_circuits::circuits::sample_cells::{Cell, MerklePath, SampleCircuitInput};
use std::fs::File;
use std::io::{BufReader, Write};
use plonky2_field::types::{Field, PrimeField64};
use crate::gen_input::gen_testing_circuit_input;
use crate::params::InputParams;
/// export circuit input to json file
pub fn export_circ_input_to_json<
F: RichField + Extendable<D> + Poseidon2 + Serialize,
const D: usize,
> (circ_input:SampleCircuitInput<F, D>, filename: &str) -> anyhow::Result<()>{
// Convert the circuit input to a serializable format
let serializable_circ_input = SerializableCircuitInput::from_circ_input(&circ_input);
// Serialize to JSON
let json_data = serde_json::to_string_pretty(&serializable_circ_input)?;
// Write to file
let mut file = File::create(filename)?;
file.write_all(json_data.as_bytes())?;
Ok(())
}
/// Function to generate circuit input and export to JSON
pub fn generate_and_export_circ_input_to_json<
F: RichField + Extendable<D> + Poseidon2 + Serialize,
const D: usize,
>(params: &InputParams, filename: &str) -> anyhow::Result<()> {
let circ_input = gen_testing_circuit_input::<F,D>(params);
export_circ_input_to_json(circ_input, filename)?;
Ok(())
}
// Serializable versions of the circuit input
// naming here is not Rust friendly but only so that its compatible with Nim code.
#[derive(Serialize, Deserialize)]
struct SerializableCircuitInput<
> {
dataSetRoot: Vec<String>,
entropy: Vec<String>,
nCellsPerSlot: usize,
nSlotsPerDataSet: usize,
slotIndex: u64,
slotRoot: Vec<String>,
slotProof: Vec<String>,
cellData: Vec<Vec<String>>,
merklePaths: Vec<Vec<String>>,
}
impl<
> SerializableCircuitInput {
/// from the circuit input to serializable circuit input
pub fn from_circ_input<
F: RichField + Extendable<D> + Poseidon2 + Serialize,
const D: usize,
>(circ_input: &SampleCircuitInput<F, D>) -> Self {
SerializableCircuitInput {
dataSetRoot: circ_input
.dataset_root
.elements
.iter()
.map(|e| e.to_canonical_u64().to_string())
.collect(),
entropy: circ_input
.entropy
.elements
.iter()
.map(|e| e.to_canonical_u64().to_string())
.collect(),
nCellsPerSlot: circ_input.n_cells_per_slot.to_canonical_u64() as usize,
nSlotsPerDataSet: circ_input.n_slots_per_dataset.to_canonical_u64() as usize,
slotIndex: circ_input.slot_index.to_canonical_u64(),
slotRoot: circ_input
.slot_root
.elements
.iter()
.map(|e| e.to_canonical_u64().to_string())
.collect(),
slotProof: circ_input
.slot_proof
.iter()
.flat_map(|hash| hash.elements.iter())
.map(|e| e.to_canonical_u64().to_string())
.collect(),
cellData: circ_input
.cell_data
.iter()
.map(|data_vec| {
data_vec.data
.iter()
.map(|e| e.to_canonical_u64().to_string())
.collect()
})
.collect(),
merklePaths: circ_input
.merkle_paths
.iter()
.map(|path| {
path.path.iter()
.flat_map(|hash| hash.elements.iter())
.map(|e| e.to_canonical_u64().to_string())
.collect()
})
.collect(),
}
}
}
impl<> SerializableCircuitInput {
/// from serializable circuit input to circuit input
pub fn to_circ_input<
F: RichField + Extendable<D> + Poseidon2,
const D: usize
>(&self) -> anyhow::Result<SampleCircuitInput<F, D>> {
// Convert entropy
let entropy_elements = self
.entropy
.iter()
.map(|s| -> anyhow::Result<F, Error> {
let n = s.parse::<u64>()?;
Ok(F::from_canonical_u64(n))
})
.collect::<anyhow::Result<Vec<F>, Error>>()?;
let entropy = HashOut {
elements: entropy_elements
.try_into()
.map_err(|_| anyhow!("Invalid entropy length"))?,
};
// Convert dataset_root
let dataset_root_elements = self
.dataSetRoot
.iter()
.map(|s| -> anyhow::Result<F, Error> {
let n = s.parse::<u64>()?;
Ok(F::from_canonical_u64(n))
})
.collect::<anyhow::Result<Vec<F>, Error>>()?;
let dataset_root = HashOut {
elements: dataset_root_elements
.try_into()
.map_err(|_| anyhow!("Invalid dataset_root length"))?,
};
// slot_index
let slot_index = F::from_canonical_u64(self.slotIndex);
// slot_root
let slot_root_elements = self
.slotRoot
.iter()
.map(|s| -> anyhow::Result<F, Error> {
let n = s.parse::<u64>()?;
Ok(F::from_canonical_u64(n))
})
.collect::<anyhow::Result<Vec<F>, Error>>()?;
let slot_root = HashOut {
elements: slot_root_elements
.try_into()
.map_err(|_| anyhow!("Invalid slot_root length"))?,
};
// n_cells_per_slot
let n_cells_per_slot = F::from_canonical_usize(self.nCellsPerSlot);
// n_slots_per_dataset
let n_slots_per_dataset = F::from_canonical_usize(self.nSlotsPerDataSet);
// slot_proof
let slot_proof_elements = self
.slotProof
.iter()
.map(|s| -> anyhow::Result<F, Error> {
let n = s.parse::<u64>()?;
Ok(F::from_canonical_u64(n))
})
.collect::<anyhow::Result<Vec<F>, Error>>()?;
if slot_proof_elements.len() % 4 != 0 {
return Err(anyhow!("Invalid slot_proof length"));
}
let slot_proof = slot_proof_elements
.chunks(4)
.map(|chunk| -> anyhow::Result<HashOut<F>, Error> {
let elements: [F; 4] = chunk
.try_into()
.map_err(|_| anyhow!("Invalid chunk length"))?;
Ok(HashOut { elements })
})
.collect::<anyhow::Result<Vec<HashOut<F>>, Error>>()?;
// cell_data
let cell_data = self
.cellData
.iter()
.map(|vec_of_strings| -> anyhow::Result<Cell<F,D>, Error> {
let cell = vec_of_strings
.iter()
.map(|s| -> anyhow::Result<F, Error> {
let n = s.parse::<u64>()?;
Ok(F::from_canonical_u64(n))
})
.collect::<anyhow::Result<Vec<F>, Error>>();
Ok(Cell::<F,D>{
data: cell.unwrap(),
})
})
.collect::<anyhow::Result<Vec<Cell<F,D>>, Error>>()?;
// merkle_paths
let merkle_paths = self
.merklePaths
.iter()
.map(|path_strings| -> anyhow::Result<MerklePath<F,D>, Error> {
let path_elements = path_strings
.iter()
.map(|s| -> anyhow::Result<F, Error> {
let n = s.parse::<u64>()?;
Ok(F::from_canonical_u64(n))
})
.collect::<anyhow::Result<Vec<F>, Error>>()?;
if path_elements.len() % 4 != 0 {
return Err(anyhow!("Invalid merkle path length"));
}
let path = path_elements
.chunks(4)
.map(|chunk| -> anyhow::Result<HashOut<F>, Error> {
let elements: [F; 4] = chunk
.try_into()
.map_err(|_| anyhow!("Invalid chunk length"))?;
Ok(HashOut { elements })
})
.collect::<anyhow::Result<Vec<HashOut<F>>, Error>>()?;
let mp = MerklePath::<F,D>{
path,
};
Ok(mp)
})
.collect::<anyhow::Result<Vec<MerklePath<F,D>>, Error>>()?;
Ok(SampleCircuitInput {
entropy,
dataset_root,
slot_index,
slot_root,
n_cells_per_slot,
n_slots_per_dataset,
slot_proof,
cell_data,
merkle_paths,
})
}
}
/// reads the json file, converts it to circuit input (SampleCircuitInput) and returns it
pub fn import_circ_input_from_json<F: RichField + Extendable<D> + Poseidon2, const D: usize>(
filename: &str,
) -> anyhow::Result<SampleCircuitInput<F, D>> {
let file = File::open(filename)?;
let reader = BufReader::new(file);
let serializable_circ_input: SerializableCircuitInput = serde_json::from_reader(reader)?;
let circ_input = serializable_circ_input.to_circ_input()?;
Ok(circ_input)
}