SKU: 12946381753

LED Wandleuchte Ranva Tunable White 1400lm / 210lm 230V 13W dimmbar Weiß matt

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Description

LED Wandleuchte Ranva Tunable White 1400lm / 210lm 230V 13W dimmbar Weiß mattLED Wandleuchte Smart Home Zigbee 3. 0 Ranva Tunable White 1400lm 210lm 230V 13W dimmbar Wei matt Im Wohnzimmer fr eine gemtliche und indirekte Zusatzbeleuchtung, im Eingangsbereich als Eyecatcher und atmosphrisches Zonenlicht oder im Wohnbereich, um Bilder anzustrahlen. Die dimmbare Wandaufbauleuchte Ranva in Wei matt mit einer Lnge von 55 cm setzt mit ihren dekorativen Lichteffekten die Wand besonders in Szene. Dank des modernen Designs passt die

LED Wandleuchte Smart Home Zigbee 3.0 Ranva Tunable White 1400lm / 210lm 230V 13W dimmbar Weiß matt

Im Wohnzimmer für eine gemütliche und indirekte Zusatzbeleuchtung, im Eingangsbereich als Eyecatcher und atmosphärisches Zonenlicht oder im Wohnbereich, um Bilder anzustrahlen. Die dimmbare Wandaufbauleuchte Ranva in Weiß matt mit einer Länge von 55 cm setzt mit ihren dekorativen Lichteffekten die Wand besonders in Szene. Dank des modernen Designs passt die Leuchte zu den verschiedensten Einrichtungsstilen. Der Lichteffekt nach oben kann individuell durch Schwenken der Blende eingestellt werden, dabei strahlt ein dekoratives Zusatzlicht nach unten. Das Licht strahlt dank strukturierter Diffusorscheibe gleichmäßig. Per Sprachsteuerung, Fernbedienung oder App kann die Wandleuchte smart gesteuert werden. Dank der integrierten Tunable White Funktion lässt sich die Lichtfarbe nach Bedarf einstellen: von tageslichtweißem Arbeitslicht bis hin zu warmweißer Entspannungsbeleuchtung. Die Leuchte ist Zigbee 3.0 kompatibel. Zigbee 3.0 ist ein Funkübertragungsprotokoll, das Geräte verschiedener Hersteller miteinander vernetzt.
  • Mit Weißlichtsteuerung (Tunable White)
  • Nutzbar mit Smart Home Gateways, die über eine Zigbee Schnittstelle verfügen
  • Steuerbar mit Smart Home Zigbee Fernbedienung
  • Dekorative Lichteffekte setzen die Wand in Szene
  • Farbe: Weiß matt
  • Schwenkbar

Spezifikation:

Abmessungen
Abmessung (Höhe x Breite x Tiefe) H: 33 x B: 550 x T: 195 mm
Design und Material
Farbe Weiß matt
Material Aluminium
Montage
Verwendbar mit folgenden Dimmern Paulmann SmartHome Zigbee Gent2 501.40
Energieverbrauch
Energieeffizienzklasse (Spektrum A-G) F
Lebensdauer
Lebensdauer 30000 h
Lichteigenschaften
Farbtemperatur 2700 K
Farbwechsel Tunable White
Ausstrahlwinkel 107 °
Nennlichtstrom 800 lm
Lichtstrom LED-Modul 1610 lm
Farbtemperatur Bereich 2700 - 6500 K
Farbwiedergabeindex > 80 Ra
Lampeneigenschaften
Bestückung 13 W
Smart Home-System Zigbee
Schwenkbereich 90 °
Technik LED
IP Schutz IP20
Dimmen mit Smart Home
Dimmbar Ja
Inklusive Leuchtmittel ja
Breite Gesamt 550 mm
Entspricht Glühlampe 105 W
Max. Leistung Bereich max. 15 W
Anzahl Bestückung 1x
Schutzklasse Schutzklasse II
Tauschbarkeit 2 Lichtquelle ist durch eine Elektrofachkraft ohne dauerhafte Beschädigung der Leuchte austauschbar.|5 Betriebsgerät ist durch eine Elektrofachkraft ohne dauerhafte Beschädigung der Leuchte austauschbar .
Aufgenommene Leistung 16 W
Trafo
Scheinleistung 19,1 VA
Trafo Höhe 16 mm
Trafo Breite 100 mm
Trafo Tiefe 46 mm
Kennzeichnungen
WEEE-Reg.-Nr. DE 39236390
Smart Home
Protokolltyp Zigbee 3.0
Zigbee-Zertifizierung Zigbee zertifiziert
Funk-Frequenz 2,4 GHz
Funkreichweite (Freifeld) 20 m
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SKU: 12946381753

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4.0 ★★★★★
Based on 19 reviews
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Shannon
Chelsea, US
★★★★★ 5
The best DL/ML book I have ever seen!!
Format: Hardcover
Fantastic deep-learning book! The logic is very easy to follow, but the content is very thorough when it comes to explaining the theories behind it, making it perfect for beginners as well as math and CS students. The best DL/ML book I have ever seen!!
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Reviewed in the United States on November 30, 2025
W
Verified Purchase
William P Ross
Battle Creek, US
★★★★★ 5
Comprehensive Look At An Incredibly Complex Topic
Format: Hardcover
Deep Learning is an advanced book with great explanations and details. There is a heavy math focus with the book's beginning chapters detailing the necessary linear algebra and probability that one will need to understand deep learning. I liked that the author's chose to cover only the parts of these subjects which are relevant to deep learning. There are many interesting philosophical sections in the book as well. Just about when I was feeling overwhelmed with the complexity of the mathematics the authors take a step back and cover the foundations of deep learning such as borrowing concepts from human learning. There was an interesting dicussion about the early studies done on the vision of cat's and monkey's in the 1970s. The text covers the entire history of deep learning and the bibliography is hundreds of sources. It is clear this is the most comprehensive text available about deep learning. For anybody interested in this topic this book is a mandatory read. There are sections about machine learning as well, which makes sense because deep learning is a subset of machine learning. These sections focused on the machine learning concepts which are most relevant to deep learning. The book was well organized and divided into three parts which cover mathematics related to deep learning, typical deep learning techniques, and then more experiment learning techniques. Often the author's state when a technique works well or when it does not, and which types of data works best for the technique. Just a warning, the math in this book is highly complex. It requires a lot of work to go through this book, but the effort will be well rewarded.
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Reviewed in the United States on March 15, 2017
A
Verified Purchase
Adam
Whiting, US
★★★★★ 4
Too Dry.
Format: Hardcover
This was a required textbook for my class in college. I think it was too dry. The book titled Deep Learning: From Curiosity To Mastery is much more approachable.
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Reviewed in the United States on May 22, 2026
A
Verified Purchase
Amazon Customer
Dallas, US
★★★★★ 5
Comprehensive! The Bible of Deep Learning!
This book has by far surpassed my expectations! I have purchased many machine learning and deep neural network books in the past, but nothing has ever come close to this book! First of all, it is written by the fathers of Deep Learning, and is therefore an authority. Secondly, the book is broken into three parts: 1. A math overview and refresher. 2. Deep Learning applications and 3. Research in Deep Learning. I can't help but go through this book from front to back. It is a smooth read, and every sentence written is meaningful. These guys know their stuff! And after you read this book, YOU WILL ALSO know your stuff! If you feel daunted by the price, just remember, you get what you pay for! I'd say they could easily charge about $300+ for this book, but they are doing everyone a very kind favor by ONLY charging this reasonable amount. You get A LOT of bang for your buck with this purchase. I hesitated at first about buying this book because of the price, but I am soooooo happy that I did! Worth every penny! Look no further, get this book and start your Deep Learning journey!!
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Reviewed in the United States on July 14, 2017
M
Verified Purchase
mackster
Boise, US
★★★★★ 1
A rushed, poorly written guide of how the "experts" can't really explain what Deep Learning is
Format: Hardcover
This book, in every sense of the word, is rushed. I think the authors wanted to establish themselves as leaders of this young-ish field, but does so by sacrificing quality. It also shows that Deep Learning theory has been there for a long time, known by another name called Neural Networks. The interesting algorithms are of MLP, Back Propagation and the classical neural networks. The optimization methods such as Adam are the ones that are new and interesting, and the only ones worthy of in this book. So, essentially, what you get from this book is use A for X, B for Y and C for Z type of dry, un-intuitive, badly written waste of paper. As for the structure of the book, it's like an example of how not to structure a book. It has some linear algebra, probability at the start (not good enough, and confuses more people and wastes paper). Goes on to prove other algorithms such as PCA (yeah, ok!). Then, talks about how this architecture works for this and that architecture. So, yeah, if you really want to try out deep learning, don't buy this book. Set up Tensorflow/pytorch/ other library, run the tutorials, find an architecture for the problem you are interested in and start tweaking that. You will have far more fun and would have saved your money. The praise that this book gets is beyond me. Did Musk even read this book? I doubt it.
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Reviewed in the United States on May 15, 2018

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