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added function to get json ai response #9

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111 changes: 103 additions & 8 deletions server/app/api/endpoints.py
Original file line number Diff line number Diff line change
Expand Up @@ -60,9 +60,10 @@ async def read_item():
)

play_review = []
for review in result:
for index, review in enumerate(result):
play_review.append(
{
"index": index,
"source": "google play store",
"url": "https://play.google.com/store/apps/details?id=in.swiggy.android",
"title": "google play review",
Expand Down Expand Up @@ -106,13 +107,14 @@ async def get_subreddit():
user_agent=user_agent,
)

subreddit = reddit.subreddit("aws") # Replace with the desired subreddit
subreddit = reddit.subreddit("swiggy") # Replace with the desired subreddit
limit = 100 # Set the desired limit for fetched posts

redditdata = []
for submission in subreddit.rising(limit=limit):
for index, submission in enumerate(subreddit.new(limit=limit)):
redditdata.append(
{
"index": index,
"source": "swiggy",
"url": submission.url,
"title": submission.title,
Expand All @@ -132,7 +134,7 @@ async def get_subreddit():
# CSV handling (adapted from Response A with improvements)
try:
with open(
"../data/new_reddit_voc_data.csv", "a", newline=""
"../data/reddit_voc.csv", "a", newline=""
) as csvfile: # Open in append mode
writer = csv.DictWriter(csvfile, fieldnames=fieldnames)
if csvfile.tell() == 0: # Check if file is empty (write header only once)
Expand Down Expand Up @@ -181,9 +183,10 @@ async def get_github_issues(
issues = response.json()

filtered_data = []
for issue in issues:
for index, issue in enumerate(issues):
filtered_data.append(
{
"index": index,
"source": "github",
"url": issue["url"],
"title": issue["title"],
Expand All @@ -204,7 +207,7 @@ async def get_github_issues(
for issue in filtered_data:
writer.writerow(issue)

df = pd.read_csv("../data/new_github_voc_data.csv")
df = pd.read_csv("../data/github_voc.csv")
df.to_excel("github_issues.xlsx", index=False)

return filtered_data
Expand All @@ -228,7 +231,7 @@ async def get_tweets():
url = "https://twitter154.p.rapidapi.com/search/search"

querystring = {
"query": "swiggy #help",
"query": "@swiggy #help",
"section": "top",
"min_retweets": "1",
"min_likes": "1",
Expand All @@ -246,9 +249,10 @@ async def get_tweets():
result = response.json()

filtered_data = []
for tweet in result["results"]:
for index, tweet in enumerate(result["results"]):
filtered_data.append(
{
"index": index,
"source": "twitter",
"url": tweet["expanded_url"],
"title": "tweet status",
Expand Down Expand Up @@ -307,3 +311,94 @@ async def use_ai():
print(score, swot, sentiment)

# to csv


@router.get("/ai/twitter")
async def process_twitter_data():
df = pd.read_csv("../data/twitter_data.csv")
processed_data = []

for index, row in df.iterrows():
review = {
"review_body": row["body"],
"created_at": row["created_at"],
"upvote_count": row["upvote"],
}

review_str = json.dumps(review)

score = request_chat_gpt_api(NOISE_PROMPT, review_str)
swot = request_chat_gpt_api(SWOT_PROMPT, review_str)
sentiment = request_chat_gpt_api(SENTIMENT_PROMPT, review_str)

processed_data.append(
{"index": index, "score": score, "swot": swot, "sentiment": sentiment}
)

json_file_path = "twitter_processed_data.json"

with open(json_file_path, "w") as json_file:
json.dump(processed_data, json_file)

print("completed")


@router.get("/ai/googleplay")
async def process_googleplay_data():
df = pd.read_csv("../data/google_play_voc.csv")
processed_data = []

for index, row in df.iterrows():
review = {
"review_body": row["body"],
"created_at": row["created_at"],
"upvote_count": row["upvote"],
"customer_rating": row["rating"],
}

review_str = json.dumps(review)

score = request_chat_gpt_api(NOISE_PROMPT, review_str)
swot = request_chat_gpt_api(SWOT_PROMPT, review_str)
sentiment = request_chat_gpt_api(SENTIMENT_PROMPT, review_str)

processed_data.append(
{"index": index, "score": score, "swot": swot, "sentiment": sentiment}
)

json_file_path = "googleplay_processed_data.json"

with open(json_file_path, "w") as json_file:
json.dump(processed_data, json_file)

print("completed processing")

@router.get("/ai/reddit")
async def process_reddit_data():
df = pd.read_csv("../data/reddit_voc.csv")
processed_data = []

for index, row in df.iterrows():
review = {
"review_body": row["body"],
"created_at": row["created_at"],
"upvote_count": row["upvote"],
"review_title": row["title"],
}

review_str = json.dumps(review)

score = request_chat_gpt_api(NOISE_PROMPT, review_str)
swot = request_chat_gpt_api(SWOT_PROMPT, review_str)
sentiment = request_chat_gpt_api(SENTIMENT_PROMPT, review_str)

processed_data.append(
{"index": index, "score": score, "swot": swot, "sentiment": sentiment}
)

json_file_path = "reddit_processed_data.json"

with open(json_file_path, "w") as json_file:
json.dump(processed_data, json_file)

print("completed processing")
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