SKU: 1454277156

Vitasonar Moodrise V-caps 60

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Description

Vitasonar Moodrise V-caps 60Productbeschrijving Heeft u te kampen met stress, emotionele spanning of professionele vermoeidheid? Kunnen emoties u parten spelen en wordt u snel gerriteerd door werk of thuisfront? Wordt u angstig door spanningen waardoor u niet optimaal functioneert in het dagelijkse leven? Mood Rise draagt bij om een positieve stemming te behouden tijdens periodes van stress, vermoeidheid en spanning. Mood Rise is een doeltreffende formule op basis van:

Productbeschrijving

Heeft u te kampen met stress, emotionele spanning of professionele vermoeidheid? Kunnen emoties u parten spelen en wordt u snel geïrriteerd door werk of thuisfront? Wordt u angstig door spanningen waardoor u niet optimaal functioneert in het dagelijkse leven?

Mood Rise draagt bij om een positieve stemming te behouden tijdens periodes van stress, vermoeidheid en spanning.

Mood Rise is een doeltreffende formule op basis van:

  • saffr'Activ (Saffraan-extract)
  • ashwagandha (Indische Ginseng)
  • rhodiola
  • vitamine D3
  • vitamine B-complex.
  • magnesium (magnesiumglycerofosfaat)

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Naam

Vitasonar Moodrise V-caps 60

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Productcode

4149043

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Indicatie(s)

Stress - vermoeidheid

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Gebruiksaanwijzing

2 capsules per dag 's morgens.

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Contra-indicaties

Niet gebruiken bij kinderen en adolescenten onder de 18 jaar. De aanbevolen dagelijkse dosis niet overschrijden. Niet gebruiken tijdens de zwangerschap. Raadpleeg uw arts of apotheker als u ook een behandeling tegen depressie gebruikt. Voedingssupplementen zijn geen substituut voor een gevarieerde en evenwichtige voeding en een gezonde levensstijl.

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Product informatie

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Wettelijke Tekst

Vitasonar Moodrise V-caps 60 is een voedingssupplement, verkrijgbaar in uw buurtapotheek of online apotheek. Neem niet meer dan de aanbevolen dagelijkse dosis vermeld op de verpakking. Het vervangt geen gezonde levensstijl en gevarieerde en evenwichtige voeding. Vraag raad aan uw apotheker. Het product altijd buiten het bereik van kinderen houden.

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Bijsluiter

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Actieve ingrediënten

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Samenstelling

Ingrediënten per dagportie (2 capsules):

Saffraankrokus (Crocus Sativus) 30 mg 2% saffranal
Rozenwortel (Rhodiola rosea) 350 mg 3% Rosavine
Ashwagandha (Withania somnifera) 150 mg 5% Withanoliden
Vitamine B12 (cyanocobalamine) 2,5 mcg 100% RI*
Vitamine B6 (pyridoxinewaterstofchloride) 1,4 mg 100% RI
Vitamine B3 (nicotinamide) 2,4 mg 100% RI
Vitamine B2 (riboflavine) 1,4 mg 100% RI
Vitamine B1 (thiaminemononitraat) 1,1 mg 100% RI
Foliumzuur 0,2 mg 100% RI
Vitamine D3 (cholecalciferol) 20 mcg 400% RI
Magnesiumglycerofosfaat 57 mg Mg 15% RI
omhulling: hydroxypropylmethylcellulose antiklontermiddel: siliciumdioxide

*RI : referentie-inname

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Extra info

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SKU: 1454277156

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4.6 ★★★★★
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Verified Purchase
Amazon Customer
Grantham, US
★★★★★ 4
Just learning it
Format: Paperback
Nice learning book just have to finish it
WAS THIS REVIEW HELPFUL?YesReportShare
Reviewed in the United States on December 10, 2025
K
Verified Purchase
Kindle Customer
Lake Worth, US
★★★★★ 5
Very useful book
Format: Paperback
I use it for the machine learning class I teach.
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Reviewed in the United States on May 3, 2026
T
Verified Purchase
Tommy Jonsson
Phoenix, US
★★★★★ 5
Cover many areas in detail and recommendations for more to read for what's outside
Format: Paperback
Good book!
WAS THIS REVIEW HELPFUL?YesReportShare
Reviewed in the United States on May 4, 2026
M
Verified Purchase
Moses Kayanda
Dallas, US
★★★★★ 5
One of the best machine learning books...
Format: Paperback, Format: Paperback
Machine Learning can often be intimidating whether you are starting out or already a practitioner. It is easy to get stuck on one concept, walk away frustrated, or just copy that code you find on StackOverflow without really understanding what it does. What the authors of this book, Machine Learning with PyTorch and Scikit-Learn, have managed to do is to keep the reader engaged giving a deeper illustration as to how the concepts work. In this book, you get practical code examples, a detailed explanation of how the various library tools work, and exposure to the mathematical concepts behind machine learning algorithms. In addition, what I like about the book unlike many machine learning books is that the authors have managed to intuitively explain how each algorithm works, how to use them, and the mistake you need to avoid. I have not read a Machine Learning book that better explains Transformers as this one does. The authors have managed to give a detailed dive into this model architecture through well-explained codes and illustrations. As a reader, you walk away having intuitively grasped the concepts of attention and self-attention in ways that will make this crucial NLP architecture clear. You get exposed to pre-trained models from HuggingFace library which really helps to have that hands-on experience working with large datasets. As they have done throughout the book, the authors have broken down those complex mathematical operations into simple explanations that are easy to follow. What I generally like about the book is how it seamlessly connects all the chapters, not throwing off the reader. There are numerous external resources quoted throughout the book. This helps spark that curiosity to dig deeper. In addition, you get introduced to PyTorch, getting exposed to all those sophisticated libraries that help the reader learn how to maximize their compute power. I would say it is not intimidating at all even if you have not used PyTorch before. I would recommend this book to anybody seeking a textbook that is both easy to read and modern in its content. If were to rate the book I will give it a 10/10 as it really applies to both beginners and experienced practitioners, covers all the concepts one needs to apply in their operations, and acts as a quick reference.
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Reviewed in the United States on March 1, 2022
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Verified Purchase
Gabe Rigall
Natrona Heights, US
★★★★★ 5
Thorough Primer for Machine Learning and PyTorch
Format: Paperback
BLUF: A thorough primer for machine learning enthusiasts with plenty of theory to underscore its many practical examples. A definite must-have for anyone looking to add PyTorch to their machine learning tool belt. PROS: - Extremely thorough (if not comprehensive). I really appreciate that this book doesn't just thrust one into building models with PyTorch. It starts at the "beginning" and provides examples, theory, additional resources, and citations along the way. - Theory. Those whose calculus and linear algebra courses ended many years ago will appreciate (if not remember exactly) the mathematical theory and notation that accompanies almost every paragraph. This book gives one the opportunity to "dig deeper" or stay in the shallows until the notation stops. - Python. Rather than simply utilizing Scikit-Learn to illustrate concepts and introduce models, this book contains many sections where models (such as a Perceptron) are coded from the ground up so the reader can fully understand the underlying mechanics. Python enthusiasts will nerd out. Parents of small children might want to skip a few pages. - Graphs, charts, and graphics. There are plenty of places where a drier text might have foregone the use of graphs. This text does not. It does however refrain from overusing them. - PyTorch. This should be obvious from the title, but this text prioritizes PyTorch instead of TensorFlow. This is especially helpful for those looking for an alternative to Keras and TensorFlow as the PyTorch API is very user-friendly. CONS: - Almost too much code. This isn't a true "con" but anyone wanting to emulate or follow along with the examples would do well to get the digital edition so they can copy and paste. - Length and complexity. Anyone hoping for a "quick read" or a "quick start guide" will be disappointed. This book hovers somewhere between an undergraduate primer and a graduate-level text for length and readability. This is not to say that it's difficult to read, merely that there are other "quick start" / "practical" texts out there that cater more to a lay audience.
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Reviewed in the United States on February 26, 2022

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