Speaking on api latest version.
This commit is contained in:
212
app.py
212
app.py
@@ -473,7 +473,7 @@ def grade_speaking_task_1():
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response['perfect_answer'] = make_openai_call(GPT_3_5_TURBO,
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perfect_answer_messages,
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token_count,
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None,
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["answer"],
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GEN_QUESTION_TEMPERATURE)["answer"]
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logging.info("POST - speaking_task_1 - " + str(
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request_id) + " - Perfect answer: " + response['perfect_answer'])
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@@ -516,14 +516,32 @@ def get_speaking_task_1_question():
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difficulty = request.args.get("difficulty", default=random.choice(difficulties))
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topic = request.args.get("topic", default=random.choice(mti_topics))
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try:
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gen_sp1_question = "Craft a thought-provoking question of " + difficulty + " difficulty for IELTS Speaking Part 1 that encourages candidates to delve deeply " \
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"into personal experiences, preferences, or insights on the topic of '" + topic + "'. Instruct the candidate to offer " \
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"not only detailed descriptions but also provide nuanced explanations, examples, or anecdotes to enrich " \
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"their response. Make sure that the generated question does not contain forbidden subjects in muslim countries." \
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"Provide your response in this json format: {'topic': 'topic','question': 'question'}"
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token_count = count_tokens(gen_sp1_question)["n_tokens"]
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response = make_openai_instruct_call(GPT_3_5_TURBO_INSTRUCT, gen_sp1_question, token_count, GEN_FIELDS,
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GEN_QUESTION_TEMPERATURE)
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messages = [
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{
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"role": "system",
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"content": (
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'You are a helpful assistant designed to output JSON on this format: '
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'{"topic": "topic", "question": "question"}')
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},
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{
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"role": "user",
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"content": (
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'Craft a thought-provoking question of ' + difficulty + ' difficulty for IELTS Speaking Part 1 '
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'that encourages candidates to delve deeply into '
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'personal experiences, preferences, or insights on the topic '
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'of "' + topic + '". Instruct the candidate '
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'to offer not only detailed '
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'descriptions but also provide '
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'nuanced explanations, examples, '
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'or anecdotes to enrich their response. '
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'Make sure that the generated question '
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'does not contain forbidden subjects in '
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'muslim countries.')
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}
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]
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token_count = count_total_tokens(messages)
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response = make_openai_call(GPT_4_O, messages, token_count, ["topic"],
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GEN_QUESTION_TEMPERATURE)
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response["type"] = 1
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response["difficulty"] = difficulty
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response["topic"] = topic
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@@ -554,33 +572,53 @@ def grade_speaking_task_2():
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logging.info("POST - speaking_task_2 - " + str(request_id) + " - Transcripted answer: " + answer)
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if has_x_words(answer, 20):
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message = ("Evaluate the given Speaking Part 2 response based on the IELTS grading system, ensuring a "
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"strict assessment that penalizes errors. Deduct points for deviations from the task, and "
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"assign a score of 0 if the response fails to address the question. Additionally, provide "
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"detailed commentary highlighting both strengths and weaknesses in the response. Present your "
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"evaluation in JSON format with "
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"the following structure: {'comment': 'comment about answer quality', 'overall': 0.0, "
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"'task_response': {'Fluency and Coherence': 0.0, 'Lexical Resource': 0.0, 'Grammatical Range "
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"and Accuracy': 0.0, "
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"'Pronunciation': 0.0}}\n Question: '" + question + "' \n Answer: '" + answer + "'")
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token_count = count_tokens(message)["n_tokens"]
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messages = [
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{
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"role": "system",
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"content": (
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'You are a helpful assistant designed to output JSON on this format: '
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'{"comment": "comment about answer quality", "overall": 0.0, '
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'"task_response": {"Fluency and Coherence": 0.0, "Lexical Resource": 0.0, '
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'"Grammatical Range and Accuracy": 0.0, "Pronunciation": 0.0}}')
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},
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{
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"role": "user",
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"content": (
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'Evaluate the given Speaking Part 2 response based on the IELTS grading system, ensuring a '
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'strict assessment that penalizes errors. Deduct points for deviations from the task, and '
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'assign a score of 0 if the response fails to address the question. Additionally, provide '
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'detailed commentary highlighting both strengths and weaknesses in the response.'
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'\n Question: "' + question + '" \n Answer: "' + answer + '"')
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}
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]
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token_count = count_total_tokens(messages)
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logging.info("POST - speaking_task_2 - " + str(request_id) + " - Requesting grading of the answer.")
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response = make_openai_instruct_call(GPT_3_5_TURBO_INSTRUCT, message, token_count,
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["comment"],
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response = make_openai_call(GPT_3_5_TURBO, messages, token_count,["comment"],
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GRADING_TEMPERATURE)
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logging.info("POST - speaking_task_2 - " + str(request_id) + " - Answer graded: " + str(response))
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perfect_answer_message = ("Provide a perfect answer according to ielts grading system to the following "
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"Speaking Part 2 question: '" + question + "'")
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token_count = count_tokens(perfect_answer_message)["n_tokens"]
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perfect_answer_messages = [
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{
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"role": "system",
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"content": ('You are a helpful assistant designed to output JSON on this format: '
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'{"answer": "perfect answer"}')
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},
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{
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"role": "user",
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"content": (
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'Provide a perfect answer according to ielts grading system to the following '
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'Speaking Part 2 question: "' + question + '"')
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}
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]
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token_count = count_total_tokens(perfect_answer_messages)
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logging.info("POST - speaking_task_2 - " + str(request_id) + " - Requesting perfect answer.")
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response['perfect_answer'] = make_openai_instruct_call(GPT_3_5_TURBO_INSTRUCT,
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perfect_answer_message,
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token_count,
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None,
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GEN_QUESTION_TEMPERATURE)
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response['perfect_answer'] = make_openai_call(GPT_3_5_TURBO,
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perfect_answer_messages,
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token_count,
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["answer"],
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GEN_QUESTION_TEMPERATURE)["answer"]
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logging.info("POST - speaking_task_2 - " + str(
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request_id) + " - Perfect answer: " + response['perfect_answer'])
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@@ -622,15 +660,31 @@ def get_speaking_task_2_question():
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difficulty = request.args.get("difficulty", default=random.choice(difficulties))
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topic = request.args.get("topic", default=random.choice(mti_topics))
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try:
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gen_sp2_question = "Create a question of " + difficulty + " difficulty for IELTS Speaking Part 2 that encourages candidates to narrate a personal experience " \
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"or story related to the topic of '" + topic + "'. Include 3 prompts that guide the candidate to describe " \
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"specific aspects of the experience, such as details about the situation, their actions, and the " \
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"reasons it left a lasting impression. Make sure that the generated question does not contain forbidden subjects in muslim countries." \
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"Provide your response in this json format: {'topic': 'topic','question': 'question', " \
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"'prompts': ['prompt_1', 'prompt_2', 'prompt_3']}"
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token_count = count_tokens(gen_sp2_question)["n_tokens"]
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response = make_openai_instruct_call(GPT_3_5_TURBO_INSTRUCT, gen_sp2_question, token_count, GEN_FIELDS,
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GEN_QUESTION_TEMPERATURE)
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messages = [
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{
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"role": "system",
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"content": (
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'You are a helpful assistant designed to output JSON on this format: '
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'{"topic": "topic", "question": "question"}')
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},
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{
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"role": "user",
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"content": (
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'Craft a thought-provoking question of ' + difficulty + ' difficulty for IELTS Speaking Part 2 '
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'that encourages candidates to narrate a '
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'personal experience or story related to the topic '
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'of "' + topic + '". Include 3 prompts that '
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'guide the candidate to describe '
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'specific aspects of the experience, '
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'such as details about the situation, '
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'their actions, and the reasons it left a '
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'lasting impression. Make sure that the '
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'generated question does not contain '
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'forbidden subjects in muslim countries.')
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}
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]
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token_count = count_total_tokens(messages)
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response = make_openai_call(GPT_4_O, messages, token_count, GEN_FIELDS, GEN_QUESTION_TEMPERATURE)
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response["type"] = 2
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response["difficulty"] = difficulty
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response["topic"] = topic
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@@ -645,15 +699,25 @@ def get_speaking_task_3_question():
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difficulty = request.args.get("difficulty", default=random.choice(difficulties))
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topic = request.args.get("topic", default=random.choice(mti_topics))
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try:
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gen_sp3_question = "Formulate a set of 3 questions of " + difficulty + " difficulty for IELTS Speaking Part 3 that encourage candidates to engage in a " \
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"meaningful discussion on the topic of '" + topic + "'. Provide inquiries, ensuring " \
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"they explore various aspects, perspectives, and implications related to the topic. " \
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"Make sure that the generated question does not contain forbidden subjects in muslim countries." \
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"Provide your response in this json format: {'topic': 'topic','questions': ['question', " \
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"'question', 'question']}"
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token_count = count_tokens(gen_sp3_question)["n_tokens"]
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response = make_openai_instruct_call(GPT_3_5_TURBO_INSTRUCT, gen_sp3_question, token_count, GEN_FIELDS,
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GEN_QUESTION_TEMPERATURE)
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messages = [
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{
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"role": "system",
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"content": (
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'You are a helpful assistant designed to output JSON on this format: '
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'{"topic": "topic", "questions": ["question", "question", "question"]}')
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},
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{
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"role": "user",
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"content": (
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'Formulate a set of 3 questions of ' + difficulty + ' difficulty for IELTS Speaking Part 3 that encourage candidates to engage in a '
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'meaningful discussion on the topic of "' + topic + '". Provide inquiries, ensuring '
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'they explore various aspects, perspectives, and implications related to the topic.'
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'Make sure that the generated question does not contain forbidden subjects in muslim countries.')
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}
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]
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token_count = count_total_tokens(messages)
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response = make_openai_call(GPT_4_O, messages, token_count, GEN_FIELDS, GEN_QUESTION_TEMPERATURE)
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# Remove the numbers from the questions only if the string starts with a number
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response["questions"] = [re.sub(r"^\d+\.\s*", "", question) if re.match(r"^\d+\.", question) else question for
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question in response["questions"]]
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@@ -706,16 +770,39 @@ def grade_speaking_task_3():
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"Pronunciation": 0
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}
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}
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perfect_answer_message = ("Provide a perfect answer according to ielts grading system to the following "
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"Speaking Part 3 question: '" + item["question"] + "'")
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token_count = count_tokens(perfect_answer_message)["n_tokens"]
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perfect_answer_messages = [
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{
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"role": "system",
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"content": ('You are a helpful assistant designed to output JSON on this format: '
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'{"answer": "perfect answer"}')
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},
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{
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"role": "user",
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"content": (
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'Provide a perfect answer according to ielts grading system to the following '
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'Speaking Part 3 question: "' + item["question"] + '"')
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}
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]
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token_count = count_total_tokens(perfect_answer_messages)
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logging.info("POST - speaking_task_3 - " + str(
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request_id) + " - Requesting perfect answer for question: " + item["question"])
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perfect_answers.append(make_openai_instruct_call(GPT_3_5_TURBO_INSTRUCT,
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perfect_answer_message,
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token_count,
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None,
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GEN_QUESTION_TEMPERATURE))
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perfect_answers.append(make_openai_call(GPT_3_5_TURBO,
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perfect_answer_messages,
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token_count,
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["answer"],
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GEN_QUESTION_TEMPERATURE))
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messages = [
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{
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"role": "system",
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"content": (
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'You are a helpful assistant designed to output JSON on this format: '
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'{"comment": "comment about answer quality", "overall": 0.0, '
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'"task_response": {"Fluency and Coherence": 0.0, "Lexical Resource": 0.0, '
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'"Grammatical Range and Accuracy": 0.0, "Pronunciation": 0.0}}')
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}
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]
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message = (
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"Evaluate the given Speaking Part 3 response based on the IELTS grading system, ensuring a "
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"strict assessment that penalizes errors. Deduct points for deviations from the task, and "
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@@ -732,17 +819,16 @@ def grade_speaking_task_3():
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request_id) + " - Formatted answers and questions for prompt: " + formatted_text)
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message += formatted_text
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message += (
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"'\n\nProvide your answer on the following json format: {'comment': 'comment about answer quality', "
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"'overall': 0.0, 'task_response': {'Fluency and Coherence': 0.0, 'Lexical Resource': 0.0, "
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"'Grammatical Range and Accuracy': 0.0, 'Pronunciation': 0.0}}")
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token_count = count_tokens(message)["n_tokens"]
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messages.append({
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"role": "user",
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"content": message
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})
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token_count = count_total_tokens(messages)
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logging.info("POST - speaking_task_3 - " + str(request_id) + " - Requesting grading of the answers.")
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response = make_openai_instruct_call(GPT_3_5_TURBO_INSTRUCT, message, token_count,
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["comment"],
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GRADING_TEMPERATURE)
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response = make_openai_call(GPT_3_5_TURBO, messages, token_count, ["comment"], GRADING_TEMPERATURE)
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logging.info("POST - speaking_task_3 - " + str(request_id) + " - Answers graded: " + str(response))
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logging.info("POST - speaking_task_3 - " + str(request_id) + " - Adding perfect answers to response.")
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