Datasets:
version stringclasses 2
values | style stringclasses 3
values | subset stringclasses 12
values | question_id stringlengths 8 23 | question stringlengths 4 8.13k | solution stringlengths 99 5.97k | test stringlengths 105 4.56k | test_info listlengths 0 13 | gpt_pass_sequence listlengths 1 10 | gpt_pass_trial_num int64 1 10 | gpt_difficulty stringclasses 3
values | gpt_pass_percentage float64 0.1 1 | trials dict | chosen_trial stringclasses 10
values | metadata dict | benchmark_similarity float64 0.16 0.93 | benchmark_instruction stringclasses 1
value | benchmark_task_id stringclasses 1
value | filter_reason stringclasses 1
value | base_id stringlengths 6 21 | variant stringclasses 3
values | top_function_names listlengths 2 13 | n_top_functions int64 2 13 | helper_call_edges listlengths 1 16 | n_helper_call_edges int64 1 16 | class_names listlengths 0 5 | has_class bool 2
classes | test_kind stringclasses 2
values | test_has_solution_import bool 2
classes | third_party_imports listlengths 0 5 | stdlib_only bool 2
classes | question_norm_sha1 stringlengths 40 40 | solution_ast_sha1 stringlengths 40 40 |
|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|
v1.0 | instruct | Leetcode | Leetcode_30_I | Write a function that receives two integers, `start` and `end`, and returns the **sum of all prime numbers** in the inclusive range `[start, end]`. If there are no prime numbers in the given range, the function should return `0`. | def is_prime(n):
"""
Returns True if n is a prime number, otherwise False.
"""
if n <= 1:
return False
if n <= 3:
return True
if n % 2 == 0 or n % 3 == 0:
return False
i = 5
while i * i <= n:
if n % i == 0 or n % (i + 2) == 0:
return False
... | from solution import sum_of_primes
def test_sum_of_primes_with_primes():
assert sum_of_primes(10, 20) == 60 # primes are 11, 13, 17, 19
def test_sum_of_primes_without_primes():
assert sum_of_primes(14, 16) == 0 # no primes in this range
def test_sum_of_primes_with_large_range():
assert sum_of_primes(1... | [
{
"docstring": "Returns True if n is a prime number, otherwise False.",
"function_declaration": "def is_prime(n):",
"function_name": "is_prime",
"parameter_list": "(n)"
},
{
"docstring": "Returns the sum of all prime numbers in the inclusive range [start, end].\nIf there are no primes in the... | [
1,
0,
1,
1,
1,
1,
0,
1,
1,
0
] | 7 | easy | 0.7 | {
"trial_gpt4o_0": {
"file_source": "CodeGen_instruction_50000_combined_sanitized_prepared_0_results_combined.jsonl",
"solution_code": "def is_prime(n):\n if n <= 1:\n return False\n if n <= 3:\n return True\n if n % 2 == 0 or n % 3 == 0:\n return False\n i = 5\n while i * ... | trial_gpt4o_8 | {
"original_instruction": "",
"prompt_id": "0000000030",
"row_id": 30,
"seed_ids": "['28', '1887', '2518']"
} | 0.637759 | Leetcode_30 | I | [
"is_prime",
"sum_of_primes"
] | 2 | [
[
"sum_of_primes",
"is_prime"
]
] | 1 | [] | false | pytest | true | [] | true | a7435892c33110bd599a1edb525b16247023e01e | bf2ed0282978810fc123ec748148dbb41fa753cc | |||
v1.0 | instruct | Leetcode | Leetcode_31_I | You are given a binary tree with `n` nodes where each node has a value represented by an integer. You need to perform `q` queries on this tree. Each query consists of two integers, `u` and `v`, representing two nodes in the tree. For each query, find and return the sum of values of all nodes that lie on the path betwee... | class TreeNode:
def __init__(self, value=0, left=None, right=None):
self.value = value
self.left = left
self.right = right
def find_lca(root, u, v):
if root is None or root.value == u or root.value == v:
return root
left_lca = find_lca(root.left, u, v)
right_lca = find_l... | from solution import TreeNode, path_sum
def create_test_tree():
# Create a simple tree for testing:
# 1
# / \
# 2 3
# /| |\
# 4 5 6 7
root = TreeNode(1)
root.left = TreeNode(2)
root.right = TreeNode(3)
root.left.left = TreeNode(4)
root.lef... | [] | [
0,
0,
0,
0,
0,
1,
0,
0,
0,
1
] | 2 | hard | 0.2 | {
"trial_gpt4o_0": {
"file_source": "CodeGen_instruction_50000_combined_sanitized_prepared_0_results_combined.jsonl",
"solution_code": "class TreeNode:\n def __init__(self, value=0, left=None, right=None):\n self.value = value\n self.left = left\n self.right = right\n \ndef find... | trial_gpt4o_9 | {
"original_instruction": "",
"prompt_id": "0000000031",
"row_id": 31,
"seed_ids": "['1675', '245', '803']"
} | 0.577608 | Leetcode_31 | I | [
"find_lca",
"path_sum",
"sum_values_on_path"
] | 3 | [
[
"path_sum",
"find_lca"
],
[
"path_sum",
"sum_values_on_path"
]
] | 2 | [
"TreeNode"
] | true | pytest | true | [] | true | 393fef7fde58b7591d3b1f2ed45e83d9aaff1076 | 256ad21511a10108f256ac83486876a1dfba659e | |||
v1.0 | instruct | Leetcode | Leetcode_141_I | You are given a list of strings `words` where each string consists of lowercase English letters. Two strings `s1` and `s2` are said to be **similar** if:
* They are of the same length.
* For every letter at position `i` in `s1`, the letter at position `i` in `s2` is either the same or belongs to the same equivale... | from collections import defaultdict
def find_representative(graph, char):
# Find the representative parent of the character
if graph[char] != char:
graph[char] = find_representative(graph, graph[char])
return graph[char]
def union(graph, a, b):
# Union the sets based on two characters a and b
... | from solution import num_similar_groups
def test_no_equivalences():
words = ["abc", "def", "ghi"]
equiv = []
assert num_similar_groups(words, equiv) == 3
def test_all_equivalent_chars():
words = ["abc", "def", "abf"]
equiv = [['a', 'd'], ['b', 'e'], ['c', 'f']]
assert num_similar_groups(words,... | [
{
"docstring": null,
"function_declaration": "def find_representative(graph, char):",
"function_name": "find_representative",
"parameter_list": "(graph, char)"
},
{
"docstring": null,
"function_declaration": "def union(graph, a, b):",
"function_name": "union",
"parameter_list": "... | [
1,
0,
0,
0,
0,
0,
0,
0,
0,
0
] | 1 | hard | 0.1 | {
"trial_gpt4o_0": {
"file_source": "CodeGen_instruction_50000_combined_sanitized_prepared_0_results_combined.jsonl",
"solution_code": "from collections import defaultdict\n\ndef find_representative(graph, char):\n # Find the representative parent of the character\n if graph[char] != char:\n grap... | trial_gpt4o_0 | {
"original_instruction": "",
"prompt_id": "0000000141",
"row_id": 141,
"seed_ids": "['1372', '2248', '646']"
} | 0.709274 | Leetcode_141 | I | [
"find_representative",
"union",
"num_similar_groups"
] | 3 | [
[
"num_similar_groups",
"find_representative"
],
[
"num_similar_groups",
"union"
],
[
"union",
"find_representative"
]
] | 3 | [] | false | pytest | true | [] | true | 9af00427ce2261706498ee6c1c66745710237451 | 57562604a30481052b4082066a2997f77d89920c | |||
v1.0 | instruct | Leetcode | Leetcode_151_I | You are given a list of strings `words` and a string `s`. We define a **palindrome pair** to be a pair of indices `(i, j)` such that the concatenation of `words[i]` and `words[j]` forms a palindrome. For example, if `words = ["bat", "tab", "cat"]` and `s = "battab"`, the valid palindrome pairs are `(0, 1)` and `(1, 0)`... | def is_palindrome(word):
"""
Helper function to check if a word is a palindrome.
"""
return word == word[::-1]
def palindrome_pairs(words):
"""
Returns the number of distinct palindrome pairs in the list of words.
"""
count = 0
for i in range(len(words)):
for j in range(len(... | from solution import palindrome_pairs, is_palindrome
def test_is_palindrome():
assert is_palindrome("racecar") == True
assert is_palindrome("hello") == False
assert is_palindrome("civic") == True
assert is_palindrome("level") == True
assert is_palindrome("noon") == True
assert is_palindrome("wo... | [
{
"docstring": "Helper function to check if a word is a palindrome.",
"function_declaration": "def is_palindrome(word):",
"function_name": "is_palindrome",
"parameter_list": "(word)"
},
{
"docstring": "Returns the number of distinct palindrome pairs in the list of words.",
"function_decl... | [
0,
0,
0,
0,
0,
0,
0,
0,
0,
1
] | 1 | hard | 0.1 | {
"trial_gpt4o_0": {
"file_source": "CodeGen_instruction_50000_combined_sanitized_prepared_0_results_combined.jsonl",
"solution_code": "def is_palindrome(s):\n \"\"\"\n Helper function to check if a given string is a palindrome.\n \"\"\"\n return s == s[::-1]\n\ndef count_palindrome_pairs(words):\... | trial_gpt4o_9 | {
"original_instruction": "",
"prompt_id": "0000000151",
"row_id": 151,
"seed_ids": "['1994', '1284', '1178']"
} | 0.758302 | Leetcode_151 | I | [
"is_palindrome",
"palindrome_pairs"
] | 2 | [
[
"palindrome_pairs",
"is_palindrome"
]
] | 1 | [] | false | pytest | true | [] | true | e2a6622f5c286368e0c41b88999204c75652acaa | 9d08e6eae500d8ca474bf2b6ad36e3746dafcc30 | |||
v1.0 | instruct | Leetcode | Leetcode_157_I | You are given a list of strings `words` where each word consists of lowercase English letters. Your task is to find the longest string in `words` that can be constructed by concatenating other strings from the list. If there are multiple possible results, return the lexicographically smallest one. Each word in the list... | def can_construct(word, word_set):
if word in word_set:
return True
for i in range(1, len(word)):
prefix = word[:i]
suffix = word[i:]
if prefix in word_set and can_construct(suffix, word_set):
return True
return False
def find_longest_concatenated_word(words):
... | from solution import find_longest_concatenated_word
def test_basic_case():
words = ["cat", "banana", "dog", "nana", "walk", "walker", "dogwalker"]
assert find_longest_concatenated_word(words) == "dogwalker"
def test_multiple_possible_results():
words = ["rat", "bat", "cat", "ratbatcat", "batcatrat"]
a... | [
{
"docstring": null,
"function_declaration": "def can_construct(word, word_set):",
"function_name": "can_construct",
"parameter_list": "(word, word_set)"
},
{
"docstring": null,
"function_declaration": "def find_longest_concatenated_word(words):",
"function_name": "find_longest_conca... | [
1,
1,
1,
1,
0,
0,
1,
0,
1,
1
] | 7 | easy | 0.7 | {
"trial_gpt4o_0": {
"file_source": "CodeGen_instruction_50000_combined_sanitized_prepared_0_results_combined.jsonl",
"solution_code": "def find_longest_concatenated_word(words):\n \"\"\"\n Finds the longest word that can be constructed by concatenating other words in the list.\n If there are multipl... | trial_gpt4o_8 | {
"original_instruction": "",
"prompt_id": "0000000157",
"row_id": 157,
"seed_ids": "['332', '1992', '2053']"
} | 0.708783 | Leetcode_157 | I | [
"can_construct",
"find_longest_concatenated_word"
] | 2 | [
[
"find_longest_concatenated_word",
"can_construct"
]
] | 1 | [] | false | pytest | true | [] | true | fd99e6c48139d6a530019c91070edb9ca5cd52b6 | 06927af33ed121ea9130817d05cb95c2405430f7 | |||
v1.0 | instruct | Leetcode | Leetcode_226_I | You are given an array `points` where `points[i] = [xi, yi]` represents the coordinates of a point on a 2D plane. You need to find the pair of points that are the farthest from each other based on Euclidean distance. Return the coordinates of these two points. If multiple pairs of points have the same maximum distance,... | from itertools import combinations
from math import sqrt
def euclidean_distance(point1, point2):
return sqrt((point2[0] - point1[0]) ** 2 + (point2[1] - point1[1]) ** 2)
def farthest_points(points):
max_distance = -1
result_pair = ()
for point1, point2 in combinations(points, 2):
distance = eu... | from solution import farthest_points
def test_farthest_points_simple():
points = [[0, 0], [1, 1], [2, 2]]
assert farthest_points(points) == ([0, 0], [2, 2])
def test_farthest_points_single_pair():
points = [[0, 0], [3, 4]]
assert farthest_points(points) == ([0, 0], [3, 4])
def test_farthest_points_sa... | [
{
"docstring": null,
"function_declaration": "def euclidean_distance(point1, point2):",
"function_name": "euclidean_distance",
"parameter_list": "(point1, point2)"
},
{
"docstring": null,
"function_declaration": "def farthest_points(points):",
"function_name": "farthest_points",
... | [
1,
0,
1,
0,
1,
0,
0,
0,
0,
0
] | 3 | hard | 0.3 | {
"trial_gpt4o_0": {
"file_source": "CodeGen_instruction_50000_combined_sanitized_prepared_0_results_combined.jsonl",
"solution_code": "import math\n\ndef euclidean_distance(point1, point2):\n \"\"\"\n Calculate and return the Euclidean distance between two points.\n \"\"\"\n return math.sqrt((poi... | trial_gpt4o_4 | {
"original_instruction": "",
"prompt_id": "0000000226",
"row_id": 226,
"seed_ids": "['1333', '1960', '860']"
} | 0.758344 | Leetcode_226 | I | [
"euclidean_distance",
"farthest_points"
] | 2 | [
[
"farthest_points",
"euclidean_distance"
]
] | 1 | [] | false | pytest | true | [] | true | a38a541dd6c70376f21ee43ffd1a7f53b905c9e3 | e1a5e8a1ae6236e26f5fad1773bafc219fe4d178 | |||
v1.0 | instruct | Leetcode | Leetcode_243_I | You are given a list of **weighted edges** representing an undirected graph and an integer `n`, which corresponds to the number of nodes (numbered from `0` to `n-1`). Each edge is represented as a triplet `[u, v, w]` where `u` and `v` denote the two nodes the edge connects, and `w` denotes the weight of that edge. Retu... | def find(parent, i):
# A utility function to find the parent of an element i
if parent[i] == i:
return i
else:
return find(parent, parent[i])
def union(parent, rank, x, y):
# A utility function to do union of two subsets x and y
xroot = find(parent, x)
yroot = find(parent, y)
... | from solution import kruskal_mst
def test_kruskal_mst_basic():
edges = [
[0, 1, 10],
[0, 2, 6],
[0, 3, 5],
[1, 3, 15],
[2, 3, 4]
]
n = 4
assert kruskal_mst(edges, n) == 19
def test_kruskal_mst_disconnected():
edges = [
[0, 1, 10],
[2, 3, 5]
... | [
{
"docstring": null,
"function_declaration": "def find(parent, i):",
"function_name": "find",
"parameter_list": "(parent, i)"
},
{
"docstring": null,
"function_declaration": "def union(parent, rank, x, y):",
"function_name": "union",
"parameter_list": "(parent, rank, x, y)"
},
... | [
1,
0,
0,
0,
1,
0,
0,
1
] | 3 | medium | 0.375 | {
"trial_gpt4o_0": {
"file_source": "CodeGen_instruction_50000_combined_sanitized_prepared_0_results_combined.jsonl",
"solution_code": "def find(parent, i):\n # A utility function to find the parent of an element i\n if parent[i] == i:\n return i\n else:\n return find(parent, parent[i])... | trial_gpt4o_0 | {
"original_instruction": "",
"prompt_id": "0000000243",
"row_id": 243,
"seed_ids": "['1855', '241', '1183']"
} | 0.776708 | Leetcode_243 | I | [
"find",
"union",
"kruskal_mst"
] | 3 | [
[
"kruskal_mst",
"find"
],
[
"kruskal_mst",
"union"
],
[
"union",
"find"
]
] | 3 | [] | false | pytest | true | [] | true | f523de6228ef47e27f92c5b79a3da56f9dccfce0 | 1bdcc005395bbdb91a1628404ac396f13b8e4a1b | |||
v1.0 | instruct | Leetcode | Leetcode_281_I | You are given a binary tree with `n` nodes labeled from `1` to `n`. Each node has a value associated with it, represented by an array `values` where `values[i]` is the value of the `i-th` node. You are also given the `edges` array where `edges[i] = [u, v]` indicates there is an edge between nodes `u` and `v` in the tre... | class TreeNode:
def __init__(self, value):
self.value = value
self.adj = []
def build_tree(n, values, edges):
nodes = [TreeNode(values[i]) for i in range(n)]
for u, v in edges:
nodes[u-1].adj.append(nodes[v-1])
nodes[v-1].adj.append(nodes[u-1])
return nodes[0]
def max_p... | from solution import max_path_sum
def test_example_case_1():
values = [0, 1, 2, 3, 4]
edges = [[1, 2], [1, 3], [3, 4], [4, 5]]
assert max_path_sum(5, values, edges) == 10
def test_single_node():
values = [5]
edges = []
assert max_path_sum(1, values, edges) == 5
def test_disconnected_nodes():
... | [] | [
0,
1,
0,
0,
0,
0,
0,
0,
0,
0
] | 1 | hard | 0.1 | {
"trial_gpt4o_0": {
"file_source": "CodeGen_instruction_50000_combined_sanitized_prepared_0_results_combined.jsonl",
"solution_code": "def max_path_sum(values, edges):\n from collections import defaultdict\n import sys\n\n sys.setrecursionlimit(10**6)\n\n # Build the graph from the edges\n gra... | trial_gpt4o_1 | {
"original_instruction": "",
"prompt_id": "0000000281",
"row_id": 281,
"seed_ids": "['518', '834', '425']"
} | 0.737154 | Leetcode_281 | I | [
"build_tree",
"max_path_sum"
] | 2 | [
[
"max_path_sum",
"build_tree"
]
] | 1 | [
"TreeNode"
] | true | pytest | true | [] | true | a13f112596e2a5feb546bb1b4d85994da6a2b641 | 3bb84319db1e1f1f67a705d91d13da412c4015d6 | |||
v1.0 | instruct | Leetcode | Leetcode_282_I | "Given two strings `s` and `t` consisting of only lowercase alphabets, write a function to determine(...TRUNCATED) | "def is_one_edit_away(s, t):\n \"\"\"\n Returns True if string s can be transformed into strin(...TRUNCATED) | "from solution import is_one_edit_away\n\ndef test_no_edits_needed():\n assert is_one_edit_away('(...TRUNCATED) | [{"docstring":"Returns True if string s can be transformed into string t by performing at most one e(...TRUNCATED) | [
0,
0,
1,
0,
0,
0,
0,
1,
1,
0
] | 3 | hard | 0.3 | {"trial_gpt4o_0":{"file_source":"CodeGen_instruction_50000_combined_sanitized_prepared_0_results_com(...TRUNCATED) | trial_gpt4o_7 | {"original_instruction":"","prompt_id":"0000000282","row_id":282,"seed_ids":"['100', '1602', '419']"(...TRUNCATED) | 0.770701 | Leetcode_282 | I | [
"is_one_edit_away",
"check_one_edit_insert_remove"
] | 2 | [
[
"is_one_edit_away",
"check_one_edit_insert_remove"
]
] | 1 | [] | false | pytest | true | [] | true | 03126e63d5302fa14b32982adfcf65fdbd02abe7 | 5ed14284146980785d1e2a6c63c66a783961546e | |||
v1.0 | instruct | Leetcode | Leetcode_336_I | "Given a `m x n` grid containing integers, you need to find the maximum sum of any rectangle within (...TRUNCATED) | "def max_sum_rectangle(grid):\n \"\"\"\n Returns the maximum sum of any rectangle within the g(...TRUNCATED) | "from solution import max_sum_rectangle\n\ndef test_single_element():\n assert max_sum_rectangle((...TRUNCATED) | [{"docstring":"Returns the maximum sum of any rectangle within the given grid.","function_declaratio(...TRUNCATED) | [
0,
0,
0,
0,
1,
0,
0,
0,
0,
0
] | 1 | hard | 0.1 | {"trial_gpt4o_0":{"file_source":"CodeGen_instruction_50000_combined_sanitized_prepared_0_results_com(...TRUNCATED) | trial_gpt4o_4 | {"original_instruction":"","prompt_id":"0000000336","row_id":336,"seed_ids":"['327', '1216', '1754'](...TRUNCATED) | 0.753827 | Leetcode_336 | I | [
"max_sum_rectangle",
"max_subarray_sum"
] | 2 | [
[
"max_sum_rectangle",
"max_subarray_sum"
]
] | 1 | [] | false | pytest | true | [] | true | be54124904e961f7676bc421cf8f76283a3e525c | 1e2b7d7e8270b526d5ffaa6647abda02b1959b13 |
Multi-function KodCode
A subset of the train split of KodCode/KodCode-V1
(revision 97d81f0695ddd7c5c02bfe16436db9a17a4a21e5) containing only rows whose gold solution uses a helper
function: it defines at least two top-level functions and at least one of them
calls another. Self-recursion and calls made by a function named main (the
stdin/stdout wrapper of the online-judge style) do not count. Rows whose
solution is a single function, or only a class, are removed. The
use_with_caution split is not included.
- Rows: 43,605 (26,524 distinct base questions)
- Rows with pytest tests, standard-library imports only, and no top-level class: 39,091 (23,405 base questions)
No original field is modified. All original columns are kept, and the flag columns below are added.
Added columns
| Column | Meaning |
|---|---|
base_id |
question_id without its style suffix. The _I (instruct) and _C (complete) rows of one base question share the same gold solution; split by base_id to avoid leakage. |
variant |
I, C or OJ |
top_function_names, n_top_functions |
Top-level functions of the gold solution |
helper_call_edges, n_helper_call_edges |
[caller, callee] calls between top-level functions (no self-calls, no calls made by main) |
class_names, has_class |
Top-level classes of the gold solution (methods are not counted as functions) |
test_kind |
pytest or stdio ({'stdin': [...], 'stdout': [...]}) |
test_has_solution_import |
Whether the test imports from solution itself |
third_party_imports, stdlib_only |
Non-standard-library modules imported by the solution or the test |
question_norm_sha1 |
SHA-1 of the whitespace/case-normalized question |
solution_ast_sha1 |
SHA-1 of the solution's AST dump |
Counts
By subset: Taco 13,595, Filter 6,569, Code_Contests 6,258, Codeforces 3,977, Data_Structure 3,140, Docs 2,998, Apps 2,207, Algorithm 1,823, Prefill 1,114, Evol 919, Leetcode 747, Package 258
By variant: I 26,410, C 17,193, OJ 2
Top-level functions per solution (6 = six or more): 2: 29,712, 3: 8,529, 4: 3,365, 5: 1,169, 6: 830
Rows with a top-level class: 2,107; rows needing third-party packages: 2,640; stdio tests: 2.
Running the tests
KodCode's own pipeline writes the solution to solution.py, prepends
from solution import * to the test code, saves it as test_solution.py,
and runs pytest with a 30-second timeout. About 12% of the tests call the
solution's functions without importing them, so the prepended import is
required.
License and attribution
Derived from KodCode-V1, which is released under CC BY-NC 4.0. This subset keeps that license (non-commercial use only). Changes: row filtering as described above, and the added columns. Please cite the original work:
@article{xu2025kodcode,
title={KodCode: A Diverse, Challenging, and Verifiable Synthetic Dataset for Coding},
author={Zhangchen Xu and Yang Liu and Yueqin Yin and Mingyuan Zhou and Radha Poovendran},
year={2025},
eprint={2503.02951},
archivePrefix={arXiv},
primaryClass={cs.LG},
url={https://arxiv.org/abs/2503.02951},
}
- Downloads last month
- 22