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Specialty Transformers

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Q116U
Superior Electric
1.3KW
Quantity: 2
Ship Date: 6-12 working days
1+ $662.0358
5+ $641.052
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x $662.0358
Ext. Price: $662.03
MOQ: 1
Mult: 1
216CU
Superior Electric
840W base mount,threaded mounting,panel mount
Quantity: 6
Ship Date: 6-12 working days
1+ $861.0053
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x $861.0053
Ext. Price: $861.00
MOQ: 1
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217CU
Superior Electric
VARIABLE TRANSFORMER; Transformer Type:Manually Operated; Construction Type:Open; No. of Phases:Single Phase; Frequency Range:50Hz / 60Hz; Input Voltage:240V; Output Voltage:240V; Output Current:5A; C 32M1445
Quantity: 13
Ship Date: 6-12 working days
1+ $867.7322
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x $867.7322
Ext. Price: $867.73
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10C
Superior Electric
Variable Transformer 71.9mm(length)*71.9mm(height)
Quantity: 315
Ship Date: 6-12 working days
1+ $276.0633
5+ $262.4538
10+ $252.8529
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x $276.0633
Ext. Price: $276.06
MOQ: 1
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22
Superior Electric
Manual- 1 Deck- Open Constr
Quantity: 1
Ship Date: 5-12 working days
Within 1 year
1+ $887.061
3+ $752.514
5+ $702.9435
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x $887.061
Ext. Price: $887.06
MOQ: 1
Mult: 1
117CU
Superior Electric
Variable Transformer; Transformer Type:Manually Operated; Construction Type:Open; No. of Phases:Single Phase; Frequency Range:50Hz / 60Hz; Input Voltage:120V; Output Voltage:120V; Output Current:12A; 05F743
Quantity: 2
Ship Date: 6-12 working days
1+ $685.7488
5+ $664.0131
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x $685.7488
Ext. Price: $685.74
MOQ: 1
Mult: 1
RB116B/RB117B
Superior Electric
TRANSFORMER; For Use With:POWERSTAT Series; Product Range:RB Series; Accessory Type:Brush Assembly 05F705
Quantity: 11
Ship Date: 6-12 working days
1+ $168.2817
5+ $144.5691
10+ $130.3429
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x $168.2817
Ext. Price: $168.28
MOQ: 1
Mult: 1
12C
Superior Electric
Variable Transformers
Quantity: 253
Ship Date: 6-12 working days
1+ $416.5892
5+ $403.3842
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x $416.5892
Ext. Price: $416.58
MOQ: 1
Mult: 1
116CU
Superior Electric
1.2KW threaded mounting,panel mount
Quantity: 133
Ship Date: 6-12 working days
1+ $524.6931
5+ $519.5091
- +
x $524.6931
Ext. Price: $524.69
MOQ: 1
Mult: 1
3PN136B
Superior Electric
Variable Transformer
Quantity: 1
Ship Date: 5-12 working days
1+ $2200.1385
5+ $2081.2155
12+ $1902.8205
24+ $1783.8975
- +
x $2200.1385
Ext. Price: $2200.13
MOQ: 1
Mult: 1

Specialty Transformers

Other Transformers refers to a class of neural network architectures that extend the capabilities of the original Transformer model, which was introduced in the paper "Attention Is All You Need" by Vaswani et al. in 2017. The original Transformer model revolutionized the field of natural language processing (NLP) with its use of self-attention mechanisms to process sequences of data, such as text or time series.

Definition:
Other Transformers are variations or extensions of the basic Transformer architecture, designed to address specific challenges or to improve performance in various tasks. They often incorporate additional layers, attention mechanisms, or training techniques to enhance the model's capabilities.

Functions:
1. Enhanced Attention Mechanisms: Some Transformers introduce new types of attention, such as multi-head attention, which allows the model to focus on different parts of the input sequence simultaneously.
2. Positional Encoding: To preserve the order of sequence data, positional encodings are added to the input embeddings.
3. Layer Normalization: This technique is used to stabilize the training of deep networks by normalizing the inputs to each layer.
4. Feedforward Networks: Each Transformer layer includes a feedforward neural network that processes the attention outputs.
5. Residual Connections: These connections help in training deeper networks by adding the output of a layer to its input before passing it to the next layer.

Applications:
- Natural Language Understanding (NLU): For tasks like sentiment analysis, question answering, and text classification.
- Machine Translation: To translate text from one language to another.
- Speech Recognition: Transcribing spoken language into written text.
- Time Series Analysis: For forecasting and pattern recognition in sequential data.
- Image Recognition: Some Transformers have been adapted for computer vision tasks.

Selection Criteria:
When choosing an Other Transformer model, consider the following:
1. Task Specificity: The model should be suitable for the specific task at hand, whether it's translation, summarization, or classification.
2. Data Size and Quality: Larger and more diverse datasets may require more complex models.
3. Computational Resources: More sophisticated models require more computational power and memory.
4. Training Time: Complex models may take longer to train.
5. Performance Metrics: Consider the model's performance on benchmarks relevant to your task.
6. Scalability: The model should be able to scale with the size of the data and the complexity of the task.

In summary, Other Transformers are a diverse family of models that build upon the foundational concepts of the original Transformer to address a wide range of challenges in machine learning and artificial intelligence. The choice of a specific model depends on the requirements of the task, the available data, and the computational resources.
Please refer to the product rule book for details.