bitmex referral

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Bitmex transaction rules

Bitmex platform has a good reputation, mainly engaged in futures leveraged transactions, futures and perpetual contracts with due delivery. A perpetual contract is a non-expiring futures. Perpetual contract capital rate: Series Lever Offer Liquidity Rate Extract Liquidity Rate Multi-warehouse fund rate Empty warehouse fund rate Fund rate period Ethereum (ETH) 50x -0.0250% 0.0750% 0.0100% -0.0100%

Bitmex, Yuan An, gate, Bitfinex restrict access to solutions that cannot be opened

Bitmex, Yuan-an, gate, Bitfinex and other trading platforms limited access cannot be opened, because these platforms are blocked by the domestic, if you want to continue to visit, you need to build a ladder to access the transaction. Many people online to buy some other people's account, that is not safe, after all, involving financial transactions, to build a dedicated IP or is necessary, so safe and easy, fixed IP can also reduce a lot of trouble.

Go: Netflix Referral System Contest

Original link: Netflix Recommendations:beyond The 5 stars (Part 1), (Part 2)Original Xavier Amatriain and Justin BasilicoTranslator: Big KuiObjectiveNexflix is a company that offers online video streaming services and DVD rentals, and is also the initiator of the famous Netflix Grand Prix. If readers want to learn more about Netflix, it's recommended to read an article on and news:Netflix: From traditional DVD rental to streaming media gorgeous turn aroundand the fan Love minority:behind the suc

Context-aware Referral system

在推荐系统领域,人们往往只关注“用户-项目”之间的关联关系,而较少考虑它们所处的上下文环境(如时间、位置、周围人员、情绪、活动状态、网络条件等等)。但是在许多应用场景下,仅仅依靠"用户-项目"二元关系并不能生成有效推荐。例如,有的用户更喜欢在"早上"而不是"中午"被推荐合适的新闻信息;有的用户在不同的心情可能会希望被推荐不同类型的音乐。Several topics in the field of context-aware recommendation systems Context modeling techniques in recommender systems; User modeling based on context-aware in recommender system; Context recommended data set; Algorithm for detecting correlation of contextual data; The algorithm of incorporating contextua

MapReduce--Friend Referral

MapReduce implements a friend recommendation:Zhang San's friends have Harry, Little Red, Zhao Liu; The same Harry, Little Red, Zhao Liu common friend is Zhang San;In Harry and Little red do not know the premise, can through Zhang San mutual understanding, to Harry recommended friends for Little Red,To small red recommended friend is Harry, is Harry, small red, Zhao Liu mutually recommended relationship.According to the analysis is to have the same friends between the characters as a

Hadoop Ecosystem technology Introduction to speed of light (shortest path algorithm Mr Implementation, social friend referral algorithm)

Hadoop Ecosystem technology Introduction to speed of light (shortest path algorithm Mr Implementation, Mr Two ordering, PageRank, social friend referral algorithm)Share the network disk download--https://pan.baidu.com/s/1i5mzhip password: vv4xThis course will have a better explanation from the basic environment building to the deeper knowledge learning. Help learners quickly get started with the use of the Hadoop ecosystem's big Data processing framew

Machine learning for hackers reading notes (10) KNN: Referral System

! = TEST.Y)#结果是50行预测错了16个点, the accuracy rate is only 68%, so the conclusion is that if the problem is not linear at all, K-nearest neighbor behaves better than GLM.#三, the following recommended cases, using kaggle data, according to a programmer has installed the package to predict whether the programmer will install another packageInstallations Head (installations)Library (' reshape ')#数据集中共三列, respectively, is package,user,installed.#cast函数的作用: Data in DataSet, user as row, package as column,

What is the relationship between search and referral systems in a Web site?

When we open any portal site, we will find that there are site searches in the website, that is, the site search, its role is to help users quickly find the information we want, however, when we open a message on this page we will also see the relevant recommendations for our users to choose. However, this site search and information recommended the role is to better improve the site's user experience, do not know if you have any idea whether there is any correlation between the two? This featu

After adding GA to the website, show traffic source/media is paypal.com/referral

1. Log into PayPal.2. Under the ' My Account ' tab-click on the ' Profile ' link.3. Click on ' Website Payment Preferences ' (under ' My selling Tools ' in the right column).4. Turn ' Auto Return ' on and enter the URL of your ecommerce thank you page which Ishttp://www.your Domain.com/finishorder . php.Then add utm_nooverride=1 to the end of your URL; This would ensure that transactions (i.e conversions) is credited to the original traffic source, rather than PayPal.Now, if a visitor came from

Mahout implementing a user-based Mahout referral program

/* * Here is a user-based Mahout referral program * Take advantage of ready-made data here. * */package byuser;import java.io.file;import java.io.ioexception;import java.util.list;import Org.apache.mahout.cf.taste.common.tasteexception;import Org.apache.mahout.cf.taste.impl.model.file.filedatamodel;import Org.apache.mahout.cf.taste.impl.neighborhood.nearestnuserneighborhood;import Org.apache.mahout.cf.taste.impl.recommender.genericuserbasedrecommender

Collaborative filtering of referral systems

Hamming distance between i,j.Calculation of Hamming distance:1. If the hashcode is within 64 bits, the final computed hashsign can be expressed using the computer's built-in type, such as unsigned long.Then the Hashsig bitwise XOR of two objects, and the number of bits in the result is 1, which is the Hamming distance value.2. If the hashcode is greater than 64 bits, such as MD5, a composite structure is required to represent it. We can use char[16] to represent 128bit.Then, the Hamming distanc

Stanford ng Machine Learning Lecture Notes-Referral system (Recommender systems)

and the computational optimization of the problem is discussed.Collaborativefiltering algorithm:We can iteratively optimize the theta and eigenvectors, but this performance is relatively low, so now consider improving the performance of the algorithm. At the same time, two kinds of methods are solved.is to combine the two method optimization functions to get the overall objective function.Algorithm Flowchart:Exercises:Vectorization Low Rank matrix factorization:The main thing here is to constru

Ask Dedecms about the problem when using a custom template, the referral path is incorrect

Ask Dedecms questions when you use a custom template, the referral path is incorrect For example, in my template, it reads: There are style/index.css files in the root directory of the Web site Then the site added a column, columns using custom templates, access to columns, the reference file path changed (plus this folder) Http://localhost/dedecms/plus/style/index.css " Please help to see, thank you ------Solution--------------------

A simple Python-based referral system

(datamat,user,simmeas,item):#Number of itemsN=shape (Datamat) [1] Simtotal=0.0;ratsimtotal=0.0#SVD decomposition is: u*s*vu,sigma,vt=LA.SVD (Datamat)#after decomposition, use only 90% of the singular value of energy, stored in the numpy arraySig4=mat (Eye (4) *sigma[:4]) #converting items into low-dimensional space using the U matrixxformeditems=datamat.t*u[:,:4]*sig4.i forJinchrange (N): userrating=Datamat[user,j]ifUserrating==0orJ==item:ContinueSimilarity=Simmeas (Xformeditems[item,:]. T,

JavaScript Placement Location Referral

1 DOCTYPE HTML>2 HTML>3 Head>4 MetaCharSet= "UTF-8" />5 external JavaScript files that need to be referenced -6 title>JavaScript location Referraltitle>7 8 placing functions and closures before -9 Head>Ten Place a global variable and initialize it - One Body> A - code that the placement program actually executes - - Body> the HTML>JavaScript Placement Location Referral

How to quickly write a stranger referral system

How to quickly write a stranger referral systemIn social games, in addition to interacting with your friends, you often design a game session where strangers interact. The following two pictures are QQ margin and the people Farm Strangers recommended interface.QQ Margin Stranger interfaceUniversal Farm Stranger InterfaceSo what does a stranger referral system usually do? The following is an example of the S

Google AdSense Referral Program Changes

Today, I received an email from Google saying that the Google promotion program has changed again, Chinese publishers can continue to use the previously stopped AdSense promotion, but the target location must be Japan or America, I found that the AdSense referral in the "Target country/region and language" After the modification to "any country", will again appear AdSense promotion ads. For the "Google package" recommended in the mail, I did not find

February stop Google AdSense referral will be in China to stop the launch of _IT industry

1. A few hours ago Google AdSense Blog just released a message, "Google AdSense referral" will be stopped in China, at the end of January only to protect the presence of North America, Latin America and Japan Webmaster, Other areas of the webmaster in the beginning of February 2008 will no longer do adsense referral. Official rhetoric: If you are in North America, Latin America, or Japan, the pricing st

Referral System 2nd week

Recommended system CategoriesBased on application domain classification: E-commerce recommendation, social friend referral, search engine recommendation, information content recommendationBased on design ideas: recommendations based on collaborative filtering , content-based recommendations, knowledge -based recommendations, mixed recommendationsBased on what data is used: recommendations based on user behavior data, recommendations based on user tags

Netflix announces Personalization and Referral system architecture

Netflix's recommendations and personalization features have always been accurate, and shortly before, they announced their own system architecture in this area.March 27, Netflix engineer Xavier Amatrain and Justin Basilico The official blog post, introducing their own personalization and referral system architecture. At the beginning of the article, they pointed out: It's not easy to develop a software architecture that can handle massive amo

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