BeNN
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From simple ML algorithms to Neural Networks and Transformers โ€” and from Number Theory to Topology, Cosmology to QED โ€” dive into the world where code meets the cosmos.๐Ÿ‘จโ€๐Ÿ’ป๐ŸŒŒ

For Any Questions @benasphy
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BeNN
https://youtu.be/LCEmiRjPEtQ?si=th6sisVkWW1OwcdY
Another Materclass by Andrej Karpathy. An Amazing man!
โ€‹๏ธTitle: StartUp [2016 -2018]
Also Known As: StartUp
Rating โญ๏ธ: 7.8 / 10
(7.8 based on 29973 user ratings) | 16 | 0h 44min |
Release Info: 8 / 11 / 2016 (Germany)
Genre: #Crime #Thriller
Language: #English
Country of Origin: ๐Ÿ‡บ๐Ÿ‡ธ #United_States
Story Line: A desperate banker, a Haitian-American gang lord and a Cuban-American hacker are forced to work together to unwittingly create their version of the American dream - organized crime 2.0.
Directors Ben Ketai
Stars Adam Brody Edi Gathegi Otmara Marrero Kristen Ariza Fredrick Bam Scott Martin Freeman Ron Perlman

Read More ...
'''Simple HIV prediction using Logistic Regression'''
import numpy as np
import pandas as pd
from sklearn.model_selection import train_test_split
from sklearn.linear_model import LogisticRegression
from sklearn.metrics import accuracy_score, confusion_matrix, classification_report

#Load Data

data = {
'Age': [25, 35, 45, 28, 50, 30, 40, 23, 60, 33],
'CD4_Count': [500, 350, 200, 450, 180, 320, 250, 600, 150, 400],
'Viral_load': [10, 20, 50, 15, 60, 25, 40, 12, 70, 30],
'HIV_status': [0, 1, 1, 0, 1, 0, 1, 0, 1, 0]
}

#Convert to DataFrame

df = pd.DataFrame(data)

#Split into Features and Target

X = df[['Age', 'CD4_Count', 'Viral_load']]
y = df['HIV_status']

#Split into Train and Test

X_train, X_test, y_train, y_test = train_test_split(X, y, test_size = 0.2, random_state = 42)

#Train the model

model = LogisticRegression()
model.fit(X_train, y_train)

#predicting

y_pred = model.predict(X_test)


#New data prediction

new_data = np.array([20, 480, 12])
new_prediction = model.predict(new_data.reshape(1, -1))
for i, (input_data, prediction) in enumerate(zip(new_data, new_prediction)):
status = "Positive" if prediction == 1 else "Negative"
print(f"predicted HIV status: {status}")
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Forwarded from AI Post โ€” Artificial Intelligence
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Robotaxi slows down really nice for speed bumps. Extremely smooth stops as well

@aipost ๐Ÿช™ | Our X ๐Ÿฅ‡
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Forwarded from AI Post โ€” Artificial Intelligence
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Tesla Robotaxi performance at night is as great as it is during the day.

@aipost ๐Ÿช™ | Our X ๐Ÿฅ‡
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L1 = [1, ('a', 3)]
L2 = [1, ('a', 3)]
L1 is L2
Anonymous Quiz
52%
True
48%
False
Anyone who's good at iOS and Android Development DM @benasphy
Please don't if you haven't done some projects to show
Forwarded from Beka (Beka)
I'm happy to announce Better Auth has raised a $5M seed led by PeakXV Partners (formerly Sequoia Capital India & SEA), with participation from Y Combinator, Chapter One, P1 Ventures, and a group of incredible investors and angels

Thanks everyone for your support and for being a part of this journey!

https://www.better-auth.com/blog/seed-round
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UFC 317: Ilia Topuria vs Charles Oliveira, Who do you Support?
Anonymous Poll
46%
Ilia Topuria
54%
Charles Oliveira
BeNN
UFC 317: Ilia Topuria vs Charles Oliveira, Who do you Support?
Probably Ilia is gonna win, but I'm team ๐Ÿ—ฃ๏ธCharles Dooo Brooonx
BeNN
UFC 317: Ilia Topuria vs Charles Oliveira, Who do you Support?
Lol Ilia smoked him within min๐Ÿ˜‚๐Ÿคฃ
Next: Ilia vs Makhachev

Ilia is on another level
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Neuralink showed two users playing Call of Duty using just their minds.

This is absolutely crazy.

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๐Ÿ’ธ Most Used Machine Learning Algorithms
AI can learn fastโ€ฆ but forgets even faster.
Everyoneโ€™s amazed by how quickly AI models pick up patterns.
But no one talks about this:

"Once training ends, they stop learning.
Feed them something new? You retrain them โ€” and they forget the old stuff."

Thatโ€™s catastrophic forgetting โ€” and itโ€™s still one of AIโ€™s biggest flaws.
Humans donโ€™t need to start over every time we learn.
We adapt, grow, and remember.
AI doesnโ€™t.
We still havenโ€™t cracked lifelong learning โ€” the ability to keep learning without erasing the past.

๐Ÿ’ก One idea I believe in:
Plasticity-based local learning โ€” like the brain, where each synapse learns and adapts continuously. No backprop. Just biology.

But what about you?

How would YOU build an AI that learns like a human โ€” without forgetting?
Drop your take ๐Ÿ‘‡
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This is soooo heartbreaking ๐Ÿ’”๐Ÿ’” honestly it's completely unfair
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BeNN
This is soooo heartbreaking ๐Ÿ’”๐Ÿ’” honestly it's completely unfair
Any Liverpool fan has felt this:

‎When you hear Jota is on the field.
‎When you see he's about to come on.
‎When the commentator says, "Jota is in the penalty box"โ€”we all know it's going to be a goal.

‎When we desperately need to win or equalize, and everyone's underperforming, we Liverpool fans all think the same: Jota will do something.
‎When he's not on the field, we find ourselves praying like the coach can hear usโ€”"Sub Jota in!"โ€”because we know he's going to score. Heโ€™s always there when we need him. We believe in him.

‎Since I started watching football as a child, Iโ€™ve never seen anyone so clinical in front of goalโ€”except maybe Harry Kane. Thatโ€™s how good he is. I remember last year, a commentator said, "The best striker right now is Diogo Jota," and I shouted, "Hell yeah!" ๐Ÿ’ฏ
‎Those banger goals you scored made me go absolutely crazy with happiness.

‎People say, everything happens for a reason.
‎But I donโ€™t see the reason for this. It feels so unfair. So cruel.

‎Wishing your family strength.
‎We will miss you and you will be remembered โ™พ๏ธ

#YNWA โค๏ธ
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The more I study AI, the more I feel backpropagation, while clever, misses something fundamental. The brain doesn't use gradients or loss functions โ€” it learns through local interactions, trial and error, and synaptic plasticity. Thatโ€™s how it adapts on the fly, learns from a few examples, and remembers for years. AI, in comparison, still feels rigid and artificial.

Iโ€™m becoming more convinced that mimicking biology is the real path forward. Plasticity-based learning, inspired by how neurons and synapses actually behave, seems far more promising than endlessly scaling up models. If we want real intelligence โ€” not just prediction machines โ€” we need systems that grow, change, and learn like we do.
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