SKU: 41153804391
broadleaf herbicide definition

broadleaf herbicide definition Broadleaf Weed Control - Triad Select

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Description

broadleaf herbicide definition Broadleaf Weed Control - Triad SelectTriad Select 3 Way Herbicide utilizes a combination of three selective herbicides to control a wide variety of hard to kill broadleaf weeds. This is an excellent all around 3 way herbicide that is a bump up from store bought herbicides. Active ingredients are 2,4 D (30. 89%), MCPA ( 8. 23%), Dicamba (2. 77%) Great for treating dandelion, clover, chickweed, wild onion, and broadleaf plantain Safe for use on Kentucky Bluegrass, Turf Type Tall Fescue

Triad Select™ 3-Way Herbicide utilizes a combination of three selective herbicides to control a wide variety of hard-to-kill broadleaf weeds. This is an excellent all-around 3-way herbicide that is a “bump up” from store-bought herbicides.

  • Active ingredients are 2,4-D (30.89%), MCPA ( 8.23%), Dicamba (2.77%)
  • Great for treating dandelion, clover, chickweed, wild onion, and broadleaf plantain
  • Safe for use on Kentucky Bluegrass, Turf Type Tall Fescue (all fescues), Ryegrass, Bermuda, and Zoysia.
  • DO NOT USE on Centipede, St. Augustine, or Bahia grasses. 
  • Available in multiple sizes*

Product Description:
Triad Select is a selective, post-emergent herbicide that contains the same active ingredients (Dicamba, 2,4D, and MCPA) as many store-bought products. However, you will find that Triad Select contains much higher herbicide formulations. In fact, this product is very similar to the ones the pros use on their routes every day.

Here are some of the common weeds that Triad controls:
Dandelion, Lespedeza, Poison Oak, Wild Carrot, Black Medic, Dockweed, Mallow, Purslane Wild Garlic, Buckhorn, Ground Ivy, Morningglory, Ragweed, Wild Lettuce, Burdock, Peppergrass, Sheep Sorrel, Wild Onion, Chicory, Henbit, Pigweed, Shepherd’s Purse, Yarrow, Chickweed, Knotweed, Plantain, Speedwell, Clover, Lambsquarters, Poison Ivy, Spurge

Note:This is not the best weed killer for ground ivy or creeping charlie. It will stunt it, so if you have it, use it, but triclopyr is better.

It is not required, but if you want to, you can also add in a non-ionic surfactant to increase the “stickiness” of the Triad weed control.

*Size options and coverage:

  • 1 Single Quart (32 oz) = covers up to 21,000 sq ft
  • 1 Single Gallon (128 oz) = covers up to 84,000 sq ft

Application Information:

This is a professional formulation, so it should be applied with a battery or pump sprayer. It should not be applied with a hose-end sprayer.

Recommended: Do not apply if temperatures are over 90F. If temps are that high, apply in the evening when they dip below 90F and elect to spot spray instead of blanket spraying.

Triad Select can be used on the following grass types:

  • Cool-Season Lawns - Kentucky Bluegrass, Turf Type Tall Fescue (all fescues), Ryegrass.
  • Warm-Season Lawns -Bermuda, Zoysia

NOTE: DO NOT USE on Centipede, St Augustine, or Bahia lawns. 

Coverage/Gallon Pint: 21,000 sq ft at the rate of 1.5 oz per 1,000 sq ftGallon: 84,000 sq ft at the rate of 1.5 oz per 1,000 sq ft
Application Details Mix 1.5 oz per gallon of water in a backpack/pump sprayer and spray that evenly across 1,000 sq ft of lawn.
Water-In Instructions Do not water this product in. Let it sit after application.
  • Label: Triad Select Info
  • Package Includes:(1) quart or (1) gallon based on selection
  • Storage: Store in a cool dry place away from direct sunlight. The product will store for 2 years under warehouse conditions.

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Product Type Liquid concentrate
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Reviewed in the United States on April 1, 2019
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Belleville, US
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Excellent book on ML
Format: Paperback
This is a great book on machine learning. Topics covered are extensive - from beginner level to advanced topics including math behind different algorithms. However, not "all" algorithms are covered. Please go through the table of contents. The first part - 11 chapters - covers machine learning concepts and second part covers advanced topics with Pytorch. There are lots of excellent code and they work!! The quality of the book I received is excellent. I have gone through all 742 pages, and it has held up very well!! I used Jupyter notebook to run all examples. I created a new notebook and copied and pasted the code and ran them. This approach worked very well for me. At the same time, I could experiment with my take on the code snippets and definitely added to my knowledge. Only issue I have is on the second part of the book discussing PyTorch: (1) Some packages are a bit older version: e.g., transformer 4.9.1 whereas current version is 4.48+. It took some tweaking/recoding to get the examples working. (2) There is not much discussion on why certain architecture was chosen - e.g., number of layers, is there a rule of thumb on how to improve performance by changing these parameters? Even with CUDA the code run for a long time. Therefore, experimenting with different values of parameters become too time consuming. (3) On the same note, if I can achieve test accuracy of 90%+ using logistic regression and almost the same (perhaps one or two percent better with PyTorch with IMDB movie review dataset and that two much faster why should I use PyTorch for this dataset? Obviously, PyTorch is for certain types of problems. Discussions can be included by not adding to the exhaustive (and apt) contents. Personally I was disappointed by lack of any example on time series. Must have for ML practitioner as a reference and guide.
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Reviewed in the United States on December 20, 2024
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Richard Hackathorn
Louisville, US
★★★★★ 5
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Format: Kindle
This textbook is for the serious life-long learners of machine learning. There are at least two ways to ‘consume’ this book. For the expert in ML, this is a textbook to study as a clear comprehensive ML overview and then to dive into sections of interest or ignorance. The concepts are grounded in code examples and are well cited (with links) to sources. Further, this textbook is appropriate if you are TensorFlow-centric and want to broaden into cutting-edge ML models/tools coded in PyTorch. For a new learner to ML, this is a textbook to DO (not just READ) with hands-on and brain-engaged. If you realize that ML is a key life-long skill for your career, consider this textbook as part of a daily learning habit (10-30 min). From personal experience, my advice to the new learner is as follows… First, clone the GitHub repository, setup your Python environment, and study the textbook, while working through the notebooks. Go on tangents and break the code. Do this methodically as part of your daily learning habit, but do not hesitate to jump ahead several chapters to prepare for tomorrow’s meeting. There is enough excellent material here for a full year of ML adventures. I did a similar strategy with Raschka’s first textbook. About four years ago, I had finished Andrew Ng’s Deep Learning Specialization as a student in his first cohort. I knew the concepts well but could not do the actual application coding. I was surprised how my Python coding improved by following Raschka’s clean and elegant style. And Raschka’s code examples were meaty enough to be springboards into working applications. Several textbook editions later, what is different about this new edition? First, it moves you through scikit-Learn (a firm foundation) to PyTorch, instead of TensorFlow. PyTorch is a better stepping-stone, both conceptually and practically. With PyTorch, you will go further with less energy, while being able to convert your efforts into TensorFlow as needed. In addition, most of the cutting-edge ML/AI/DL research is in PyTorch. It is nice to read a recent arXiv paper, clone their repository, click on the Colab tutorial, and replicate their experiments, along with picking up a ton of new coding tricks & tips. I am excited to work through these PyTorch sections to hone my skills. Second, there is a clear recognition of model tracking and tuning practices. This is often a gap in other ML textbooks and courses. Once you progress beyond the simple demo examples in a lecture, you realize that the real work is experiments, more experiments, and still more experiments, so that you must understand what the model architecture and hyperparameters are doing to your dataset. There is good coverage of scikit-Learn pipeline, grid search, model performance, and the like. Third, ML/AI/DL practice is rapidly evolving. Every week new ML packages/services become available that could save much grief on your current project. What is refreshing about Raschka’s textbook series is that he constantly adding cutting-edge topics because he likes to stay current and to help us stay current. Hence, this edition contains recent ML treats as: transformers, self-supervised learning, autoencoders-to-GAN, graph neural networks, DBSCAN, t-SNE (with brief mention of UMAP), and PyTorch-Lightning.
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Reviewed in the United States on February 26, 2022
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Format: Paperback
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