Aceh Bukan Satu-satunya Yang Nolak! Kenapa Pengungsi Rohingya Ditolak Dimana-mana? |LearningGoogling
Summary
TLDRThe video explores the widespread rejection of Rohingya refugees in Southeast Asia, particularly in Aceh, Malaysia, and Thailand. Despite a history of supporting Rohingya rights, local communities often resist their presence due to concerns over resources, past negative interactions, and rising crime rates associated with refugees. The Rohingya, primarily Muslims from Myanmar's Rakhine State, face persecution and statelessness, forcing them to flee. However, countries like Malaysia and Thailand, while initially sympathetic, are tightening borders and rejecting new arrivals, citing socio-economic strains and safety concerns. The video prompts viewers to consider the complexities of refugee support and national sovereignty.
Takeaways
- 🌍 The Rohingya crisis has a long history, rooted in ethnic cleansing and persecution by the Myanmar military, leading to a significant refugee population.
- 🚫 Many Southeast Asian countries, including Thailand, Malaysia, and Indonesia, are increasingly rejecting Rohingya refugees due to fears of crime and social disruption.
- 🇹🇭 Thailand, while historically open to refugees, has become wary due to past experiences with illegal immigration and associated criminal activities.
- 🇲🇾 Malaysia, despite condemning the violence against Rohingya in Myanmar, is increasingly turning away boats of refugees, citing national security and pandemic-related concerns.
- 🚢 Many Rohingya refugees are left with few options, often forced to turn back or face detention upon reaching neighboring countries.
- 👥 The local communities in Aceh, Indonesia, have shown mixed reactions to accepting Rohingya refugees, driven by concerns over resources and past negative interactions.
- 🔒 Malaysia does not recognize the UN refugee protocol, giving it a legal basis to deny entry to Rohingya refugees.
- 📉 Since the 2017 military crackdown in Myanmar, more than one million Rohingya have fled, with the majority now living in crowded camps in Cox's Bazar, Bangladesh.
- ⚖️ The rejection of Rohingya refugees raises questions about international responsibility and the need for regional cooperation in addressing the crisis.
- 🗣️ There are ongoing debates about the ethical implications of rejecting refugees versus prioritizing the needs and safety of local populations.
Q & A
What is the primary purpose of activation functions in neural networks?
-Activation functions introduce non-linearity into the neural network, allowing it to learn complex patterns.
Can you name some common activation functions used in deep learning?
-Common activation functions include Sigmoid, Tanh, ReLU (Rectified Linear Unit), and Softmax.
What are the key characteristics of the Sigmoid activation function?
-The Sigmoid function maps input values to a range between 0 and 1, making it useful for binary classification.
Why is the Tanh activation function often preferred over Sigmoid?
-Tanh outputs values between -1 and 1, which helps to center the data and can lead to faster convergence in training.
What is the main drawback of the ReLU activation function?
-ReLU can suffer from the 'dying ReLU' problem, where neurons can become inactive and stop learning if they only output zero.
How does the Softmax function work, and in what scenario is it typically used?
-The Softmax function converts raw scores into probabilities, making it ideal for multi-class classification problems.
What is the significance of choosing the right activation function for a model?
-Choosing the appropriate activation function can greatly influence the model's performance, speed of training, and ability to generalize.
Can activation functions be used in conjunction with each other?
-Yes, it is common to use different activation functions in different layers of a neural network to leverage their unique properties.
What is the purpose of the activation function in the output layer?
-The output layer's activation function determines the final output format, such as using Sigmoid for binary outputs or Softmax for multi-class outputs.
How do activation functions impact the gradient descent optimization process?
-Activation functions affect the gradients computed during backpropagation, which can impact the optimization and convergence of the model.
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